<?xml version="1.0" encoding="UTF-8"?>
<?xml-stylesheet type="text/xsl" href="https://m2.mtmt.hu/xsl/gui3.xsl" ?>
<myciteResult>
  <serverUrl>https://m2.mtmt.hu/</serverUrl>
  <labelLang>hun</labelLang>
  <responseDate>2026-06-25 15:30</responseDate>
  <content>
    <publication>
      <otype>JournalArticle</otype>
      <mtid>35662917</mtid>
      <status>VALIDATED</status>
      <published>true</published>
      <unhandledTickets>0</unhandledTickets>
      <deleted>false</deleted>
      <lastRefresh>2026-06-01T15:34:32.492+0000</lastRefresh>
      <lastModified>2026-06-01T15:29:43.595+0000</lastModified>
      <created>2025-01-06T08:56:28.019+0000</created>
      <creator>
        <snippet>true</snippet>
        <mtid>10042184</mtid>
        <familyName>Groniewsky</familyName>
        <givenName>Axel</givenName>
        <link>/api/author/10042184</link>
        <otype>Author</otype>
        <label>Groniewsky Axel (Energetika)</label>
        <published>true</published>
        <oldId>10042184</oldId>
      </creator>
      <lastDuplumSearch>2025-03-21T08:53:20.576+0000</lastDuplumSearch>
      <validated>2025-03-13T23:42:33.032+0000</validated>
      <validator>
        <snippet>true</snippet>
        <mtid>521</mtid>
        <familyName>Szuper</familyName>
        <givenName>Admin</givenName>
        <link>/api/admin/521</link>
        <otype>Admin</otype>
        <label>Szuper Admin (admin)</label>
        <published>true</published>
      </validator>
      <core>false</core>
      <publicationPending>false</publicationPending>
      <type>
        <snippet>true</snippet>
        <mtid>24</mtid>
        <code>24</code>
        <link>/api/publicationtype/24</link>
        <otype>PublicationType</otype>
        <label>Folyóiratcikk</label>
        <listPosition>1</listPosition>
        <published>true</published>
        <oldId>24</oldId>
        <otypeName>JournalArticle</otypeName>
      </type>
      <subType>
        <snippet>true</snippet>
        <mtid>1134514</mtid>
        <nameEng>Survey paper</nameEng>
        <docType>
          <snippet>true</snippet>
          <mtid>24</mtid>
          <code>24</code>
          <link>/api/publicationtype/24</link>
          <otype>PublicationType</otype>
          <label>Folyóiratcikk</label>
          <listPosition>1</listPosition>
          <published>true</published>
          <oldId>24</oldId>
          <otypeName>JournalArticle</otypeName>
        </docType>
        <link>/api/subtype/1134514</link>
        <name>Összefoglaló cikk</name>
        <otype>SubType</otype>
        <label>Összefoglaló cikk (Folyóiratcikk)</label>
        <listPosition>102</listPosition>
        <published>true</published>
        <oldId>1134514</oldId>
      </subType>
      <category>
        <snippet>true</snippet>
        <mtid>1</mtid>
        <link>/api/category/1</link>
        <otype>Category</otype>
        <label>Tudományos</label>
        <published>true</published>
        <oldId>1</oldId>
      </category>
      <firstAuthor>Markides, Christos N.</firstAuthor>
      <title>Working fluid and system optimisation of organic Rankine cycles via computer-aided molecular design: A review</title>
      <journal>
        <snippet>true</snippet>
        <sciIndexed>true</sciIndexed>
        <link>/api/journal/3767</link>
        <reviewType>REVIEWED</reviewType>
        <label>PROGRESS IN ENERGY AND COMBUSTION SCIENCE 0360-1285 1873-216X</label>
        <published>true</published>
        <hungarian>false</hungarian>
        <oldId>3767</oldId>
        <noIF>false</noIF>
        <mtid>3767</mtid>
        <scopusIndexed>true</scopusIndexed>
        <pIssn>0360-1285</pIssn>
        <eIssn>1873-216X</eIssn>
        <otype>Journal</otype>
        <lang>FOREIGN</lang>
      </journal>
      <volume>107</volume>
      <internalId>101201</internalId>
      <firstPageOrInternalIdForSort>101201</firstPageOrInternalIdForSort>
      <publishedYear>2025</publishedYear>
      <digital>true</digital>
      <printed>true</printed>
      <sourceYear>2025</sourceYear>
      <foreignEdition>true</foreignEdition>
      <foreignLanguage>true</foreignLanguage>
      <fullPublication>true</fullPublication>
      <conferencePublication>false</conferencePublication>
      <nationalOrigin>false</nationalOrigin>
      <missingAuthor>false</missingAuthor>
      <oaType>NONE</oaType>
      <oaCheckDate>2026-06-01</oaCheckDate>
      <oaFree>false</oaFree>
      <citationCount>0</citationCount>
      <citationCountUnpublished>0</citationCountUnpublished>
      <citationCountWoOther>0</citationCountWoOther>
      <independentCitCountWoOther>0</independentCitCountWoOther>
      <doiCitationCount>0</doiCitationCount>
      <wosCitationCount>0</wosCitationCount>
      <scopusCitationCount>0</scopusCitationCount>
      <independentCitationCount>0</independentCitationCount>
      <unhandledCitationCount>0</unhandledCitationCount>
      <citingPubCount>0</citingPubCount>
      <independentCitingPubCount>0</independentCitingPubCount>
      <unhandledCitingPubCount>0</unhandledCitingPubCount>
      <citedPubCount>6</citedPubCount>
      <citedCount>6</citedCount>
      <ratingsForSort>D1</ratingsForSort>
      <hasCitationDuplums>false</hasCitationDuplums>
      <importDuplum>false</importDuplum>
      <importOverwritten>false</importOverwritten>
      <importSkipped>false</importSkipped>
      <userChangeableUntil>2025-04-06T07:56:31.673+0000</userChangeableUntil>
      <directInstitutesForSort></directInstitutesForSort>
      <ownerAuthorCount>5</ownerAuthorCount>
      <ownerInstituteCount>10</ownerInstituteCount>
      <directInstituteCount>0</directInstituteCount>
      <authorCount>14</authorCount>
      <contributorCount>0</contributorCount>
      <hasQualityFactor>true</hasQualityFactor>
      <languages>
        <language>
          <otype>Language</otype>
          <mtid>10002</mtid>
          <link>/api/language/10002</link>
          <label>Angol</label>
          <name>Angol</name>
          <nameEng>English</nameEng>
          <published>true</published>
          <oldId>2</oldId>
          <snippet>true</snippet>
        </language>
      </languages>
      <authorships>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574419</mtid>
          <link>/api/authorship/122574419</link>
          <label>Markides, Christos N.</label>
          <listPosition>1</listPosition>
          <share>0.071428575</share>
          <first>true</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Markides</familyName>
          <givenName>Christos N.</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574420</mtid>
          <link>/api/authorship/122574420</link>
          <label>Bardow, André</label>
          <listPosition>2</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Bardow</familyName>
          <givenName>André</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574421</mtid>
          <link>/api/authorship/122574421</link>
          <label>De Paepe, Michel</label>
          <listPosition>3</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>De Paepe</familyName>
          <givenName>Michel</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574422</mtid>
          <link>/api/authorship/122574422</link>
          <label>De Servi, Carlo</label>
          <listPosition>4</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>De Servi</familyName>
          <givenName>Carlo</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574423</mtid>
          <link>/api/authorship/122574423</link>
          <label>Groß, Joachim</label>
          <listPosition>5</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Groß</familyName>
          <givenName>Joachim</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574424</mtid>
          <link>/api/authorship/122574424</link>
          <label>Haslam, Andrew J.</label>
          <listPosition>6</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Haslam</familyName>
          <givenName>Andrew J.</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574425</mtid>
          <link>/api/authorship/122574425</link>
          <label>Lecompte, Steven</label>
          <listPosition>7</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Lecompte</familyName>
          <givenName>Steven</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574426</mtid>
          <link>/api/authorship/122574426</link>
          <label>Papadopoulos, Athanasios I.</label>
          <listPosition>8</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Papadopoulos</familyName>
          <givenName>Athanasios I.</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574427</mtid>
          <link>/api/authorship/122574427</link>
          <label>Oyewunmi, Oyeniyi A.</label>
          <listPosition>9</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Oyewunmi</familyName>
          <givenName>Oyeniyi A.</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574428</mtid>
          <link>/api/authorship/122574428</link>
          <label>Seferlis, Panos</label>
          <listPosition>10</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Seferlis</familyName>
          <givenName>Panos</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574429</mtid>
          <link>/api/authorship/122574429</link>
          <label>Schilling, Johannes</label>
          <listPosition>11</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Schilling</familyName>
          <givenName>Johannes</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574430</mtid>
          <link>/api/authorship/122574430</link>
          <label>Linke, Patrick</label>
          <listPosition>12</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Linke</familyName>
          <givenName>Patrick</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574431</mtid>
          <link>/api/authorship/122574431</link>
          <label>Tian, Hua</label>
          <listPosition>13</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>false</last>
          <corresponding>false</corresponding>
          <familyName>Tian</familyName>
          <givenName>Hua</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
        <authorship>
          <otype>PersonAuthorship</otype>
          <mtid>122574432</mtid>
          <link>/api/authorship/122574432</link>
          <label>Shu, Gequn</label>
          <listPosition>14</listPosition>
          <share>0.071428575</share>
          <first>false</first>
          <last>true</last>
          <corresponding>false</corresponding>
          <familyName>Shu</familyName>
          <givenName>Gequn</givenName>
          <authorTyped>true</authorTyped>
          <editorTyped>false</editorTyped>
          <otherTyped>false</otherTyped>
          <type>
            <otype>AuthorshipType</otype>
            <mtid>1</mtid>
            <link>/api/authorshiptype/1</link>
            <label>Szerző</label>
            <code>0</code>
            <published>true</published>
            <oldId>0</oldId>
            <snippet>true</snippet>
          </type>
          <published>false</published>
          <snippet>true</snippet>
        </authorship>
      </authorships>
      <identifiers>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>28153611</mtid>
          <link>/api/publicationidentifier/28153611</link>
          <label>DOI: 10.1016/j.pecs.2024.101201</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>6</mtid>
            <link>/api/publicationsource/6</link>
            <label>DOI</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10001</mtid>
              <link>/api/publicationsourcetype/10001</link>
              <label>DOI</label>
              <mayHaveOa>true</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>DOI</name>
            <nameEng>DOI</nameEng>
            <linkPattern>https://doi.org/@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>6</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>10.1016/j.pecs.2024.101201</idValue>
          <realUrl>https://doi.org/10.1016/j.pecs.2024.101201</realUrl>
          <published>false</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>28805327</mtid>
          <link>/api/publicationidentifier/28805327</link>
          <label>WoS: 001409311500001</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>1</mtid>
            <link>/api/publicationsource/1</link>
            <label>WoS</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10003</mtid>
              <link>/api/publicationsourcetype/10003</link>
              <label>Indexelő adatbázis</label>
              <mayHaveOa>false</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>WoS</name>
            <nameEng>WoS</nameEng>
            <linkPattern>https://www.webofscience.com/wos/woscc/full-record/@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>1</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>001409311500001</idValue>
          <realUrl>https://www.webofscience.com/wos/woscc/full-record/001409311500001</realUrl>
          <published>false</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>28805328</mtid>
          <link>/api/publicationidentifier/28805328</link>
          <label>Scopus: 85211072317</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>3</mtid>
            <link>/api/publicationsource/3</link>
            <label>Scopus</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10003</mtid>
              <link>/api/publicationsourcetype/10003</link>
              <label>Indexelő adatbázis</label>
              <mayHaveOa>false</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>Scopus</name>
            <nameEng>Scopus</nameEng>
            <linkPattern>http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>3</oldId>
            <snippet>true</snippet>
          </source>
          <validState>IDENTICAL</validState>
          <idValue>85211072317</idValue>
          <realUrl>http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85211072317</realUrl>
          <published>false</published>
          <snippet>true</snippet>
        </identifier>
        <identifier>
          <otype>PublicationIdentifier</otype>
          <mtid>28153612</mtid>
          <link>/api/publicationidentifier/28153612</link>
          <label>Egyéb URL: https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595</label>
          <source>
            <otype>PlainSource</otype>
            <mtid>40</mtid>
            <link>/api/publicationsource/40</link>
            <label>Egyéb URL</label>
            <type>
              <otype>PublicationSourceType</otype>
              <mtid>10006</mtid>
              <link>/api/publicationsourcetype/10006</link>
              <label>Link</label>
              <mayHaveOa>true</mayHaveOa>
              <published>true</published>
              <snippet>true</snippet>
            </type>
            <name>Egyéb URL</name>
            <nameEng>Other URL</nameEng>
            <linkPattern>@@@</linkPattern>
            <publiclyVisible>true</publiclyVisible>
            <published>true</published>
            <oldId>40</oldId>
            <snippet>true</snippet>
          </source>
          <idValue>https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595</idValue>
          <realUrl>https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595</realUrl>
          <published>false</published>
          <snippet>true</snippet>
        </identifier>
      </identifiers>
      <ratings>
        <rating>
          <otype>SjrRating</otype>
          <mtid>11564315</mtid>
          <link>/api/sjrrating/11564315</link>
          <label>sjr:D1 (2025) Scopus - Chemical Engineering (miscellaneous) PROGRESS IN ENERGY AND COMBUSTION SCIENCE 0360-1285 1873-216X</label>
          <listPos>3</listPos>
          <rankValue>0.0</rankValue>
          <type>journal</type>
          <ratingType>
            <otype>RatingType</otype>
            <mtid>10002</mtid>
            <link>/api/ratingtype/10002</link>
            <label>sjr</label>
            <code>sjr</code>
            <published>true</published>
            <snippet>true</snippet>
          </ratingType>
          <subject>
            <otype>ClassificationExternal</otype>
            <mtid>1501</mtid>
            <link>/api/classificationexternal/1501</link>
            <label>Scopus - Chemical Engineering (miscellaneous)</label>
            <published>true</published>
            <oldId>1501</oldId>
            <snippet>true</snippet>
          </subject>
          <ranking>D1</ranking>
          <calculation>DIRECT</calculation>
          <published>true</published>
          <snippet>true</snippet>
        </rating>
      </ratings>
      <references>
        <reference>
          <otype>Reference</otype>
          <mtid>61181580</mtid>
          <link>/api/reference/61181580</link>
          <label>1. Lawrence Livermore National Laboratory 2014: World energy flow in 2011.Energy flow charts: charting the complex relationships among energy, water, and carbon</label>
          <listPosition>1</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181581</mtid>
          <link>/api/reference/61181581</link>
          <label>2. Handagama 2023: Renewable and waste-heat utilization technologies</label>
          <listPosition>2</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181582</mtid>
          <link>/api/reference/61181582</link>
          <label>3. Markides 2023: Power generation technologies for low-temperature and distributed heat</label>
          <listPosition>3</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181583</mtid>
          <link>/api/reference/61181583</link>
          <label>4. Oyewunmi 2018: Heat recovery and conversion technologies with organic fluid cycles: optimal working fluid and system design</label>
          <listPosition>4</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181584</mtid>
          <link>/api/reference/61181584</link>
          <label>5. Markides 2015: Low-concentration solar-power systems based on organic Rankine cycles for distributed-scale applications: Overview and further developments., Front Energy Res, 3, p. 47, DOI: 10.3389/fenrg.2015.00047</label>
          <listPosition>5</listPosition>
          <doi>10.3389/fenrg.2015.00047</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181585</mtid>
          <link>/api/reference/61181585</link>
          <label>6. Oyewunmi 2017: Working-fluid selection and performance investigation of a two-phase single-reciprocating-piston heat-conversion engine., Appl Energy, 186, p. 376, DOI: 10.1016/j.apenergy.2016.05.008</label>
          <listPosition>6</listPosition>
          <doi>10.1016/j.apenergy.2016.05.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181586</mtid>
          <link>/api/reference/61181586</link>
          <label>7. Ibrahim 1993: A Kalina cycle application for power generation., Energy, 18, p. 961, DOI: 10.1016/S0360-5442(06)80001-0</label>
          <listPosition>7</listPosition>
          <doi>10.1016/S0360-5442(06)80001-0</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181587</mtid>
          <link>/api/reference/61181587</link>
          <label>8. Kalina 1992: Advances in Kalina cycle technology 1980–1991: Part I: Development of a practical cycle</label>
          <listPosition>8</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181588</mtid>
          <link>/api/reference/61181588</link>
          <label>9. Zhang 2012: A review of research on the Kalina cycle., Renew Sustain Energy Rev, 16, p. 5309, DOI: 10.1016/j.rser.2012.05.040</label>
          <listPosition>9</listPosition>
          <doi>10.1016/j.rser.2012.05.040</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181589</mtid>
          <link>/api/reference/61181589</link>
          <label>10. Kalina 2004: Low temperature geothermal system</label>
          <listPosition>10</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181590</mtid>
          <link>/api/reference/61181590</link>
          <label>11. Goswami 1998: Solar thermal power technology: Present status and ideas for the future., Energy Sources, 20, p. 137, DOI: 10.1080/00908319808970052</label>
          <listPosition>11</listPosition>
          <doi>10.1080/00908319808970052</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181591</mtid>
          <link>/api/reference/61181591</link>
          <label>12. Vijayaraghavan 2006: A combined power and cooling cycle modified to improve resource utilization efficiency using a distillation stage., Energy, 31, p. 1177, DOI: 10.1016/j.energy.2005.04.014</label>
          <listPosition>12</listPosition>
          <doi>10.1016/j.energy.2005.04.014</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181592</mtid>
          <link>/api/reference/61181592</link>
          <label>13. Akbari 2014: Thermoeconomic analysis &amp; optimization of the combined supercritical CO2 (carbon dioxide) recompression Brayton/organic Rankine cycle., Energy, 78, p. 501, DOI: 10.1016/j.energy.2014.10.037</label>
          <listPosition>13</listPosition>
          <doi>10.1016/j.energy.2014.10.037</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181593</mtid>
          <link>/api/reference/61181593</link>
          <label>14. Niu 2013: Optimal arrangement of the solar collectors of a supercritical CO2-based solar Rankine cycle system., Appl Therm Eng, 50, p. 505, DOI: 10.1016/j.applthermaleng.2012.08.004</label>
          <listPosition>14</listPosition>
          <doi>10.1016/j.applthermaleng.2012.08.004</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181594</mtid>
          <link>/api/reference/61181594</link>
          <label>15. Chan 2013: A review of chemical heat pumps, thermodynamic cycles and thermal energy storage technologies for low grade heat utilisation., Appl Therm Eng, 50, p. 1257, DOI: 10.1016/j.applthermaleng.2012.06.041</label>
          <listPosition>15</listPosition>
          <doi>10.1016/j.applthermaleng.2012.06.041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181595</mtid>
          <link>/api/reference/61181595</link>
          <label>16. Date 2012: Investigate the potential of using trilateral flash cycle for combined desalination and power generation integrated with salinity gradient solar ponds., Procedia Eng, 49, p. 42, DOI: 10.1016/j.proeng.2012.10.110</label>
          <listPosition>16</listPosition>
          <doi>10.1016/j.proeng.2012.10.110</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181596</mtid>
          <link>/api/reference/61181596</link>
          <label>17. Fischer 2011: Comparison of trilateral cycles and organic Rankine cycles., Energy, 36, p. 6208, DOI: 10.1016/j.energy.2011.07.041</label>
          <listPosition>17</listPosition>
          <doi>10.1016/j.energy.2011.07.041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181597</mtid>
          <link>/api/reference/61181597</link>
          <label>18. Oyewunmi 2016: On the use of SAFT-VR Mie for assessing large-glide fluorocarbon working-fluid mixtures in organic Rankine cycles., Appl Energy, 163, p. 263, DOI: 10.1016/j.apenergy.2015.10.040</label>
          <listPosition>18</listPosition>
          <doi>10.1016/j.apenergy.2015.10.040</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181598</mtid>
          <link>/api/reference/61181598</link>
          <label>19. Lecompte 2014: Exergy analysis of zeotropic mixtures as working fluids in organic Rankine cycles., Energy Convers Manage, 85, p. 727, DOI: 10.1016/j.enconman.2014.02.028</label>
          <listPosition>19</listPosition>
          <doi>10.1016/j.enconman.2014.02.028</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181599</mtid>
          <link>/api/reference/61181599</link>
          <label>20. Lampe 2014: Computer-aided molecular design of ORC working fluids using PC-SAFT.Proceedings of the 8th international conference on foundations of computer-aided process design, Vol. 34, p. 357</label>
          <listPosition>20</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181600</mtid>
          <link>/api/reference/61181600</link>
          <label>21. Angelino 1998: Multicomponent working fluids for organic Rankine cycles (ORCs)., Energy, 23, p. 449, DOI: 10.1016/S0360-5442(98)00009-7</label>
          <listPosition>21</listPosition>
          <doi>10.1016/S0360-5442(98)00009-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181601</mtid>
          <link>/api/reference/61181601</link>
          <label>22. Freeman 2015: An assessment of solar-powered organic rankine cycle systems for combined heating and power in UK domestic applications., Appl Energy, 138, p. 605, DOI: 10.1016/j.apenergy.2014.10.035</label>
          <listPosition>22</listPosition>
          <doi>10.1016/j.apenergy.2014.10.035</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181602</mtid>
          <link>/api/reference/61181602</link>
          <label>23. Oyewunmi 2014: An assessment of working-fluid mixtures using SAFT-VR Mie for use in organic Rankine cycle systems for waste-heat recovery., Comput Therm Sci: Int J, 6, p. 301, DOI: 10.1615/.2014011116</label>
          <listPosition>23</listPosition>
          <doi>10.1615/.2014011116</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181603</mtid>
          <link>/api/reference/61181603</link>
          <label>24. Freeman 2015: An assessment of solar-thermal collector designs for small-scale combined heating and power applications in the United Kingdom., Heat Transf Eng, 36, p. 1332, DOI: 10.1080/01457632.2015.995037</label>
          <listPosition>24</listPosition>
          <doi>10.1080/01457632.2015.995037</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181604</mtid>
          <link>/api/reference/61181604</link>
          <label>25. Song 2020: Parametric optimisation of a combined supercritical CO2 (S-CO2) cycle and organic Rankine cycle (ORC) system for internal combustion engine (ICE) waste-heat recovery., Energy Convers Manage, 218, DOI: 10.1016/j.enconman.2020.112999</label>
          <listPosition>25</listPosition>
          <doi>10.1016/j.enconman.2020.112999</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181605</mtid>
          <link>/api/reference/61181605</link>
          <label>26. Song 2021: Combined supercritical CO2 (SCO2) cycle and organic Rankine cycle (ORC) system for hybrid solar and geothermal power generation: Thermoeconomic assessment of various configurations., Renew Energy, 174, p. 1020, DOI: 10.1016/j.renene.2021.04.124</label>
          <listPosition>26</listPosition>
          <doi>10.1016/j.renene.2021.04.124</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181606</mtid>
          <link>/api/reference/61181606</link>
          <label>27. Ceperley 1979: A pistonless Stirling engine—The traveling wave heat engine., J Acoust Soc Am, 66, p. 1508, DOI: 10.1121/1.383505</label>
          <listPosition>27</listPosition>
          <doi>10.1121/1.383505</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181607</mtid>
          <link>/api/reference/61181607</link>
          <label>28. Huang 1996: System design of orifice pulse-tube refrigerator using linear flow network analysis., Cryogenics, 36, p. 889, DOI: 10.1016/S0011-2275(96)00064-1</label>
          <listPosition>28</listPosition>
          <doi>10.1016/S0011-2275(96)00064-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181608</mtid>
          <link>/api/reference/61181608</link>
          <label>29. Backhaus 2000: A thermoacoustic-Stirling heat engine: Detailed study., J Acoust Soc Am, 107, p. 3148, DOI: 10.1121/1.429343</label>
          <listPosition>29</listPosition>
          <doi>10.1121/1.429343</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181609</mtid>
          <link>/api/reference/61181609</link>
          <label>30. Backhaus 1999: A thermoacoustic Stirling heat engine., Nature, 399, p. 335, DOI: 10.1038/20624</label>
          <listPosition>30</listPosition>
          <doi>10.1038/20624</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181610</mtid>
          <link>/api/reference/61181610</link>
          <label>31. Markides 2011: A dynamic model for the efficiency optimization of an oscillatory low grade heat engine., Energy, 36, p. 6967, DOI: 10.1016/j.energy.2011.08.051</label>
          <listPosition>31</listPosition>
          <doi>10.1016/j.energy.2011.08.051</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181611</mtid>
          <link>/api/reference/61181611</link>
          <label>32. Solanki 2012: Dynamic modelling of a two-phase thermofluidic oscillator for efficient low grade heat utilization: Effect of fluid inertia., Appl Energy, 89, p. 156, DOI: 10.1016/j.apenergy.2011.01.007</label>
          <listPosition>32</listPosition>
          <doi>10.1016/j.apenergy.2011.01.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181612</mtid>
          <link>/api/reference/61181612</link>
          <label>33. Solanki 2013: The role of heat exchange on the behaviour of an oscillatory two-phase low-grade heat engine., Appl Therm Eng, 53, p. 177, DOI: 10.1016/j.applthermaleng.2012.04.019</label>
          <listPosition>33</listPosition>
          <doi>10.1016/j.applthermaleng.2012.04.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181613</mtid>
          <link>/api/reference/61181613</link>
          <label>34. Solanki 2013: Modelling of a two-phase thermofluidic oscillator for low-grade heat utilisation: Accounting for irreversible thermal losses., Appl Energy, 106, p. 337, DOI: 10.1016/j.apenergy.2012.12.069</label>
          <listPosition>34</listPosition>
          <doi>10.1016/j.apenergy.2012.12.069</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181614</mtid>
          <link>/api/reference/61181614</link>
          <label>35. Markides 2013: Nonlinear heat transfer processes in a two-phase thermofluidic oscillator., Appl Energy, 104, p. 958, DOI: 10.1016/j.apenergy.2012.11.056</label>
          <listPosition>35</listPosition>
          <doi>10.1016/j.apenergy.2012.11.056</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181615</mtid>
          <link>/api/reference/61181615</link>
          <label>36. Markides 2014: Working fluid selection for a two-phase thermofluidic oscillator: Effect of thermodynamic properties., Appl Energy, 124, p. 167, DOI: 10.1016/j.apenergy.2014.02.042</label>
          <listPosition>36</listPosition>
          <doi>10.1016/j.apenergy.2014.02.042</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181616</mtid>
          <link>/api/reference/61181616</link>
          <label>37. Markides 2013: Experimental investigation of a thermally powered central heating circulator: Pumping characteristics., Appl Energy, 110, p. 132, DOI: 10.1016/j.apenergy.2013.03.030</label>
          <listPosition>37</listPosition>
          <doi>10.1016/j.apenergy.2013.03.030</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181617</mtid>
          <link>/api/reference/61181617</link>
          <label>38. Kirmse 2017: A two-phase single-reciprocating-piston heat conversion engine: Non-linear dynamic modelling., Appl Energy, 186, p. 359, DOI: 10.1016/j.apenergy.2016.05.140</label>
          <listPosition>38</listPosition>
          <doi>10.1016/j.apenergy.2016.05.140</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181618</mtid>
          <link>/api/reference/61181618</link>
          <label>39. Encontech B.V. 2013: Up-THERM: Innovative high efficiency phase change fluid based heat engine</label>
          <listPosition>39</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181619</mtid>
          <link>/api/reference/61181619</link>
          <label>40. Glushenkov 2012: Single-piston alternative to Stirling engines., Appl Energy, 97, p. 743, DOI: 10.1016/j.apenergy.2011.12.050</label>
          <listPosition>40</listPosition>
          <doi>10.1016/j.apenergy.2011.12.050</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181620</mtid>
          <link>/api/reference/61181620</link>
          <label>41. Taleb 2016: A single-reciprocating-piston two-phase thermofluidic prime-mover., Energy, 104, p. 250, DOI: 10.1016/j.energy.2016.02.113</label>
          <listPosition>41</listPosition>
          <doi>10.1016/j.energy.2016.02.113</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181621</mtid>
          <link>/api/reference/61181621</link>
          <label>42. Up-THERM Consortium 2013: Up-THERM: Innovative high efficiency phase change fluid based heat engine</label>
          <listPosition>42</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181622</mtid>
          <link>/api/reference/61181622</link>
          <label>43. Garg 2013: Evaluation of isopentane, R-245fa and their mixtures as working fluids for organic Rankine cycles., Appl Therm Eng, 51, p. 292, DOI: 10.1016/j.applthermaleng.2012.08.056</label>
          <listPosition>43</listPosition>
          <doi>10.1016/j.applthermaleng.2012.08.056</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181623</mtid>
          <link>/api/reference/61181623</link>
          <label>44. Wang 2010: A comparative study of pure and zeotropic mixtures in low-temperature solar Rankine cycle., Appl Energy, 87, p. 3366, DOI: 10.1016/j.apenergy.2010.05.016</label>
          <listPosition>44</listPosition>
          <doi>10.1016/j.apenergy.2010.05.016</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181624</mtid>
          <link>/api/reference/61181624</link>
          <label>45. Lecompte 2015: Multi-objective thermo-economic optimization strategy for ORCs applied to subcritical and transcritical cycles for waste heat recovery., Energies, 8, p. 2714, DOI: 10.3390/en8042714</label>
          <listPosition>45</listPosition>
          <doi>10.3390/en8042714</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181625</mtid>
          <link>/api/reference/61181625</link>
          <label>46. Barse 2016: Maximizing ORC performance with optimal match of working fluid with system design., Appl Therm Eng, 100, p. 11, DOI: 10.1016/j.applthermaleng.2016.01.167</label>
          <listPosition>46</listPosition>
          <doi>10.1016/j.applthermaleng.2016.01.167</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181626</mtid>
          <link>/api/reference/61181626</link>
          <label>47. Shu 2014: Study of mixtures based on hydrocarbons used in ORC (organic Rankine cycle) for engine waste heat recovery., Energy, 74, p. 428, DOI: 10.1016/j.energy.2014.07.007</label>
          <listPosition>47</listPosition>
          <doi>10.1016/j.energy.2014.07.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181627</mtid>
          <link>/api/reference/61181627</link>
          <label>48. Bao 2013: A review of working fluid and expander selections for organic Rankine cycle., Renew Sust Energ Rev, 24, p. 325, DOI: 10.1016/j.rser.2013.03.040</label>
          <listPosition>48</listPosition>
          <doi>10.1016/j.rser.2013.03.040</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181628</mtid>
          <link>/api/reference/61181628</link>
          <label>49. Shu 2014: Alkanes as working fluids for high-temperature exhaust heat recovery of diesel engine using organic Rankine cycle., Appl Energy, 119, p. 204, DOI: 10.1016/j.apenergy.2013.12.056</label>
          <listPosition>49</listPosition>
          <doi>10.1016/j.apenergy.2013.12.056</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181629</mtid>
          <link>/api/reference/61181629</link>
          <label>50. Song 2015: Analysis of ORC (organic Rankine cycle) systems with pure hydrocarbons and mixtures of hydrocarbon and retardant for engine waste heat recovery., Appl Therm Eng, 89, p. 693, DOI: 10.1016/j.applthermaleng.2015.06.055</label>
          <listPosition>50</listPosition>
          <doi>10.1016/j.applthermaleng.2015.06.055</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181630</mtid>
          <link>/api/reference/61181630</link>
          <label>51. Lampe 2014: Simultaneous optimization of working fluid and process for organic Rankine cycles using PC-SAFT., Ind Eng Chem Res, 53, p. 8821, DOI: 10.1021/ie5006542</label>
          <listPosition>51</listPosition>
          <doi>10.1021/ie5006542</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181631</mtid>
          <link>/api/reference/61181631</link>
          <label>52. Imran 2016: Comparative assessment of organic Rankine cycle integration for low temperature geothermal heat source applications., Energy, 102, p. 473, DOI: 10.1016/j.energy.2016.02.119</label>
          <listPosition>52</listPosition>
          <doi>10.1016/j.energy.2016.02.119</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181632</mtid>
          <link>/api/reference/61181632</link>
          <label>53. Freeman 2017: Working fluid selection and electrical performance optimisation of a domestic solar-ORC combined heat and power system for year-round operation in the UK., Appl Energy, 186, p. 291, DOI: 10.1016/j.apenergy.2016.04.041</label>
          <listPosition>53</listPosition>
          <doi>10.1016/j.apenergy.2016.04.041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181633</mtid>
          <link>/api/reference/61181633</link>
          <label>54. Oyewunmi 2017: Thermoeconomic analysis of recuperative sub- and transcritical organic Rankine cycle systems., Energy Procedia, 129, p. 58, DOI: 10.1016/j.egypro.2017.09.187</label>
          <listPosition>54</listPosition>
          <doi>10.1016/j.egypro.2017.09.187</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181634</mtid>
          <link>/api/reference/61181634</link>
          <label>55. Lampe 2012: Simultaneous process and working fluid optimisation for organic Rankine cycles (ORC) using PC-SAFT.22 European symposium on computer aided process engineering, Vol. 30, p. 572</label>
          <listPosition>55</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181635</mtid>
          <link>/api/reference/61181635</link>
          <label>56. Gani 1983: Molecular design of solvents for liquid extraction based on UNIFAC., Fluid Phase Equilib, 13, p. 331, DOI: 10.1016/0378-3812(83)80104-6</label>
          <listPosition>56</listPosition>
          <doi>10.1016/0378-3812(83)80104-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181636</mtid>
          <link>/api/reference/61181636</link>
          <label>57. Bardow 2010: Continuous-molecular targeting for integrated solvent and process design., Ind Eng Chem Res, 49, p. 2834, DOI: 10.1021/ie901281w</label>
          <listPosition>57</listPosition>
          <doi>10.1021/ie901281w</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181637</mtid>
          <link>/api/reference/61181637</link>
          <label>58. Stavrou 2014: Continuous molecular targeting computer-aided molecular design (CoMT-CAMD) for simultaneous process and solvent design for CO2 capture., Ind Eng Chem Res, 53, p. 18029, DOI: 10.1021/ie502924h</label>
          <listPosition>58</listPosition>
          <doi>10.1021/ie502924h</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181638</mtid>
          <link>/api/reference/61181638</link>
          <label>59. Burger 2015: A hierarchical method to integrated solvent and process design of physical CO2 absorption using the SAFT-γ Mie approach., AIChE J, 61, p. 3249, DOI: 10.1002/aic.14838</label>
          <listPosition>59</listPosition>
          <doi>10.1002/aic.14838</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181639</mtid>
          <link>/api/reference/61181639</link>
          <label>60. Gopinath 2016: Outer approximation algorithm with physical domain reduction for computer-aided molecular and separation process design., AIChE J, 62, p. 3484, DOI: 10.1002/aic.15411</label>
          <listPosition>60</listPosition>
          <doi>10.1002/aic.15411</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181640</mtid>
          <link>/api/reference/61181640</link>
          <label>61. Gani 1991: A group contribution approach to computer-aided molecular design., AIChE J, 37, p. 1318, DOI: 10.1002/aic.690370905</label>
          <listPosition>61</listPosition>
          <doi>10.1002/aic.690370905</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181641</mtid>
          <link>/api/reference/61181641</link>
          <label>62. Odele 1993: Computer aided molecular design: A novel method for optimal solvent selection., Fluid Phase Equilib, 82, p. 47, DOI: 10.1016/0378-3812(93)87127-M</label>
          <listPosition>62</listPosition>
          <doi>10.1016/0378-3812(93)87127-M</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181642</mtid>
          <link>/api/reference/61181642</link>
          <label>63. Churi 1996: Novel mathematical programming model for computer aided molecular design., Ind Eng Chem Res, 35, p. 3788, DOI: 10.1021/ie9601920</label>
          <listPosition>63</listPosition>
          <doi>10.1021/ie9601920</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181643</mtid>
          <link>/api/reference/61181643</link>
          <label>64. Joback 1987: Estimation of pure-component properties from group-contributions., Chem Eng Commun, 57, p. 233, DOI: 10.1080/00986448708960487</label>
          <listPosition>64</listPosition>
          <doi>10.1080/00986448708960487</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181644</mtid>
          <link>/api/reference/61181644</link>
          <label>65. Fredenslund 1975: Group-contribution estimation of activity coefficients in nonideal liquid mixtures., AIChE J, 21, p. 1086, DOI: 10.1002/aic.690210607</label>
          <listPosition>65</listPosition>
          <doi>10.1002/aic.690210607</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181645</mtid>
          <link>/api/reference/61181645</link>
          <label>66. Chapman 1989: SAFT: Equation of state solution model for associating fluids., Fluid Phase Equilib, 52, p. 31, DOI: 10.1016/0378-3812(89)80308-5</label>
          <listPosition>66</listPosition>
          <doi>10.1016/0378-3812(89)80308-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181646</mtid>
          <link>/api/reference/61181646</link>
          <label>67. Chapman 1990: New reference equation of state for associating liquids., Ind Eng Chem Res, 29, p. 1709, DOI: 10.1021/ie00104a021</label>
          <listPosition>67</listPosition>
          <doi>10.1021/ie00104a021</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181647</mtid>
          <link>/api/reference/61181647</link>
          <label>68. Vijande 2010: Group-contribution method for the molecular parameters of the PC-SAFT equation of state taking into account the proximity effect. Application to nonassociated compounds., Ind Eng Chem Res, 49, p. 9394, DOI: 10.1021/ie1002813</label>
          <listPosition>68</listPosition>
          <doi>10.1021/ie1002813</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181648</mtid>
          <link>/api/reference/61181648</link>
          <label>69. Vijande 2014: Group-contribution method with proximity effect for PC-SAFT molecular parameters. 2. Application to association parameters: Primary alcohols and amines., Ind Eng Chem Res, 53, p. 909, DOI: 10.1021/ie4023786</label>
          <listPosition>69</listPosition>
          <doi>10.1021/ie4023786</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181649</mtid>
          <link>/api/reference/61181649</link>
          <label>70. Tamouza 2004: Group contribution method with SAFT EOS applied to vapor liquid equilibria of various hydrocarbon series., Fluid Phase Equilib, 222–223, p. 67, DOI: 10.1016/j.fluid.2004.06.038</label>
          <listPosition>70</listPosition>
          <doi>10.1016/j.fluid.2004.06.038</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181650</mtid>
          <link>/api/reference/61181650</link>
          <label>71. Tamouza 2005: Application to binary mixtures of a group contribution SAFT EoS (GC-SAFT)., Fluid Phase Equilib, 228–229, p. 409, DOI: 10.1016/j.fluid.2004.10.003</label>
          <listPosition>71</listPosition>
          <doi>10.1016/j.fluid.2004.10.003</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181651</mtid>
          <link>/api/reference/61181651</link>
          <label>72. Nguyen-Huynh 2008: Modeling phase equilibria of asymmetric mixtures using a group-contribution SAFT (GC-SAFT) with a kij correlation method based on London’s theory. 1. Application to CO2 + n-alkane, Methane + n-alkane and ethane + n-alkane systems., Ind Eng Chem Res, 47, p. 8847, DOI: 10.1021/ie071643r</label>
          <listPosition>72</listPosition>
          <doi>10.1021/ie071643r</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181652</mtid>
          <link>/api/reference/61181652</link>
          <label>73. Tihic 2008: A predictive group-contribution simplified PC-SAFT equation of state: Application to polymer systems., Ind Eng Chem Res, 47, p. 5092, DOI: 10.1021/ie0710768</label>
          <listPosition>73</listPosition>
          <doi>10.1021/ie0710768</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181653</mtid>
          <link>/api/reference/61181653</link>
          <label>74. Nguyen Thi 2005: Application of group contribution SAFT equation of state (GC-SAFT) to model phase behaviour of light and heavy esters., Fluid Phase Equilib, 238, p. 254, DOI: 10.1016/j.fluid.2005.10.009</label>
          <listPosition>74</listPosition>
          <doi>10.1016/j.fluid.2005.10.009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181654</mtid>
          <link>/api/reference/61181654</link>
          <label>75. Emami 2008: Group contribution prediction of vapor pressure with SAFT, perturbed-chain statistical associating fluid theory, and Elliott-Suresh-Donohue equations of state., Ind Eng Chem Res, 47, p. 8401, DOI: 10.1021/ie800329r</label>
          <listPosition>75</listPosition>
          <doi>10.1021/ie800329r</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181655</mtid>
          <link>/api/reference/61181655</link>
          <label>76. Lymperiadis 2007: A group contribution method for associating chain molecules based on the statistical associating fluid theory (SAFT - γ)., J Chem Phys, 127, DOI: 10.1063/1.2813894</label>
          <listPosition>76</listPosition>
          <doi>10.1063/1.2813894</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181656</mtid>
          <link>/api/reference/61181656</link>
          <label>77. Lymperiadis 2008: A generalisation of the SAFT - γ group contribution method for groups comprising multiple spherical segments., Fluid Phase Equilib, 274, p. 85, DOI: 10.1016/j.fluid.2008.08.005</label>
          <listPosition>77</listPosition>
          <doi>10.1016/j.fluid.2008.08.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181657</mtid>
          <link>/api/reference/61181657</link>
          <label>78. Peng 2009: Developing a predictive group-contribution-based SAFT-VR equation of state., Fluid Phase Equilib, 277, p. 131, DOI: 10.1016/j.fluid.2008.11.008</label>
          <listPosition>78</listPosition>
          <doi>10.1016/j.fluid.2008.11.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181658</mtid>
          <link>/api/reference/61181658</link>
          <label>79. Papaioannou 2014: Group contribution methodology based on the statistical associating fluid theory for heteronuclear molecules formed from Mie segments., J Chem Phys, 140, DOI: 10.1063/1.4851455</label>
          <listPosition>79</listPosition>
          <doi>10.1063/1.4851455</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181659</mtid>
          <link>/api/reference/61181659</link>
          <label>80. Lecompte 2015: Review of organic Rankine cycle (ORC) architectures for waste heat recovery., Renew Sustain Energy Rev, 47, p. 448, DOI: 10.1016/j.rser.2015.03.089</label>
          <listPosition>80</listPosition>
          <doi>10.1016/j.rser.2015.03.089</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181660</mtid>
          <link>/api/reference/61181660</link>
          <label>81. Tartière 2013: KCORC Science and Tech.</label>
          <listPosition>81</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181661</mtid>
          <link>/api/reference/61181661</link>
          <label>82. Colonna 2015: Organic Rankine cycle power systems: From the concept to current technology, applications, and an outlook to the future., J Eng Gas Turbines Power, 137, DOI: 10.1115/1.4029884</label>
          <listPosition>82</listPosition>
          <doi>10.1115/1.4029884</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181662</mtid>
          <link>/api/reference/61181662</link>
          <label>83. Bertrand 2011: Low-grade heat conversion into power using organic Rankine cycles - A review of various applications., Renew Sustain Energy Rev, 15, p. 3963, DOI: 10.1016/j.rser.2011.07.024</label>
          <listPosition>83</listPosition>
          <doi>10.1016/j.rser.2011.07.024</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181663</mtid>
          <link>/api/reference/61181663</link>
          <label>84. Wieland C, Dawo F, Schifflechner C, Astolfi M. Market report on organic Rankine cycle power systems: Recent developments and outlook. In: Proceedings of 6th international seminar on ORC Power Systems. 1, 2021, p. 1–10.</label>
          <listPosition>84</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181664</mtid>
          <link>/api/reference/61181664</link>
          <label>85. Tartière 2021: KCORC Home</label>
          <listPosition>85</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181665</mtid>
          <link>/api/reference/61181665</link>
          <label>86. Firth 2019: Quantification of global waste heat and its environmental effects., Appl Energy, 235, p. 1314, DOI: 10.1016/j.apenergy.2018.10.102</label>
          <listPosition>86</listPosition>
          <doi>10.1016/j.apenergy.2018.10.102</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181666</mtid>
          <link>/api/reference/61181666</link>
          <label>87. Forman 2016: Estimating the global waste heat potential., Renew Sustain Energy Rev, 57, p. 1568, DOI: 10.1016/j.rser.2015.12.192</label>
          <listPosition>87</listPosition>
          <doi>10.1016/j.rser.2015.12.192</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181667</mtid>
          <link>/api/reference/61181667</link>
          <label>88. Maghrabi 2023: Electricity demand reduction through waste heat recovery in olefins plants based on a technology-agnostic approach., Energy Convers Manag: X, 20</label>
          <listPosition>88</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181668</mtid>
          <link>/api/reference/61181668</link>
          <label>89. Gangar 2020: Recovery and utilization of low-grade waste heat in the oil-refining industry using heat engines and heat pumps: An international technoeconomic comparison., Energies, 13, DOI: 10.3390/en13102560</label>
          <listPosition>89</listPosition>
          <doi>10.3390/en13102560</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181669</mtid>
          <link>/api/reference/61181669</link>
          <label>90. Incorporated 2008: Waste heat recovery: Technology opportunities in the US industry</label>
          <listPosition>90</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181670</mtid>
          <link>/api/reference/61181670</link>
          <label>91. Element Energy Limited 2014: The potential for recovering and using surplus heat from industry: Final Report for DECC</label>
          <listPosition>91</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181671</mtid>
          <link>/api/reference/61181671</link>
          <label>92. Markides 2013: The role of pumped and waste heat technologies in a high-efficiency sustainable energy future for the UK., Appl Therm Eng, 53, p. 197, DOI: 10.1016/j.applthermaleng.2012.02.037</label>
          <listPosition>92</listPosition>
          <doi>10.1016/j.applthermaleng.2012.02.037</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181672</mtid>
          <link>/api/reference/61181672</link>
          <label>93. Tocci 2017: Small scale organic Rankine cycle (ORC): A techno-economic review., Energy, 10, p. 413</label>
          <listPosition>93</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181673</mtid>
          <link>/api/reference/61181673</link>
          <label>94. Lemmens 2016: Cost engineering techniques and their applicability for cost estimation of organic Rankine cycle systems., Energies, 9, p. 485, DOI: 10.3390/en9070485</label>
          <listPosition>94</listPosition>
          <doi>10.3390/en9070485</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181674</mtid>
          <link>/api/reference/61181674</link>
          <label>95. Calli 2021: Thermoeconomic analysis of a biomass and solar energy based organic Rankine cycle system under part load behavior., Sustain Energy Technol Assess, 46</label>
          <listPosition>95</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181675</mtid>
          <link>/api/reference/61181675</link>
          <label>96. Macchi 2017: Theoretical basis of the Organic Rankine Cycle., Technol Appl, p. 3</label>
          <listPosition>96</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181676</mtid>
          <link>/api/reference/61181676</link>
          <label>97. Lecompte 2016: Performance evaluation of organic rankine cycle architectures: Application to waste heat valorisationp. 1</label>
          <listPosition>97</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181677</mtid>
          <link>/api/reference/61181677</link>
          <label>98. Papadopoulos 2010: On the systematic design and selection of optimal working fluids for organic rankine cycles., Appl Therm Eng, 30, p. 760, DOI: 10.1016/j.applthermaleng.2009.12.006</label>
          <listPosition>98</listPosition>
          <doi>10.1016/j.applthermaleng.2009.12.006</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181678</mtid>
          <link>/api/reference/61181678</link>
          <label>99. Quoilin S, Declaye S, Legros A, Guillaume L. Working fluid selection and operating maps for Organic Rankine Cycle expansion machines. In: Proceedings of international compressor engineering conference at purdue. 21, 2012, p. 1–10.</label>
          <listPosition>99</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181679</mtid>
          <link>/api/reference/61181679</link>
          <label>100. Papadopoulos 2020: An approach for simultaneous computer-aided molecular design with holistic sustainability assessment: Application to phase-change CO2 capture solvents., Comp Chem Eng, 135, DOI: 10.1016/j.compchemeng.2020.106769</label>
          <listPosition>100</listPosition>
          <doi>10.1016/j.compchemeng.2020.106769</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181680</mtid>
          <link>/api/reference/61181680</link>
          <label>101. Rayegan 2011: A procedure to select working fluids for solar organic Rankine cycles (ORCs)., Renew Energy, 36, p. 659, DOI: 10.1016/j.renene.2010.07.010</label>
          <listPosition>101</listPosition>
          <doi>10.1016/j.renene.2010.07.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181681</mtid>
          <link>/api/reference/61181681</link>
          <label>102. Tabor H, Bronicki L. Establishing criteria for fluids for small vapor turbines. SAE Tech Pap., 1964., DOI: 10.4271/640823</label>
          <listPosition>102</listPosition>
          <doi>10.4271/640823</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181682</mtid>
          <link>/api/reference/61181682</link>
          <label>103. Badr 1985: Selecting a working fluid for a rankine-cycle engine., Appl Energy, 21, p. 1, DOI: 10.1016/0306-2619(85)90072-8</label>
          <listPosition>103</listPosition>
          <doi>10.1016/0306-2619(85)90072-8</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181683</mtid>
          <link>/api/reference/61181683</link>
          <label>104. Györke 2018: Novel classification of pure working fluids for organic Rankine cycle., Energy, 145, p. 288, DOI: 10.1016/j.energy.2017.12.135</label>
          <listPosition>104</listPosition>
          <doi>10.1016/j.energy.2017.12.135</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181684</mtid>
          <link>/api/reference/61181684</link>
          <label>105. Maizza 1996: Working fluids in non-steady flows for waste energy recovery systems., Appl Therm Eng, 16, p. 579, DOI: 10.1016/1359-4311(95)00044-5</label>
          <listPosition>105</listPosition>
          <doi>10.1016/1359-4311(95)00044-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181685</mtid>
          <link>/api/reference/61181685</link>
          <label>106. Hung 2010: A study of organic working fluids on system efficiency of an ORC using low-grade energy sources., Energy, 35, p. 1403, DOI: 10.1016/j.energy.2009.11.025</label>
          <listPosition>106</listPosition>
          <doi>10.1016/j.energy.2009.11.025</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181686</mtid>
          <link>/api/reference/61181686</link>
          <label>107. Larjola 1995: Electricity from industrial waste heat using high-speed organic Rankine cycle (ORC)., Int J Prod Econ, 41, p. 227, DOI: 10.1016/0925-5273(94)00098-0</label>
          <listPosition>107</listPosition>
          <doi>10.1016/0925-5273(94)00098-0</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181687</mtid>
          <link>/api/reference/61181687</link>
          <label>108. Yamamoto 2001: Design and testing of the organic rankine cycle., Energy, 26, p. 239, DOI: 10.1016/S0360-5442(00)00063-3</label>
          <listPosition>108</listPosition>
          <doi>10.1016/S0360-5442(00)00063-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181688</mtid>
          <link>/api/reference/61181688</link>
          <label>109. Kroger 1968: Condensation heat transfer in the presence of a non-condensable gas., Int J Heat Mass Transfer, 11, p. 15, DOI: 10.1016/0017-9310(68)90060-4</label>
          <listPosition>109</listPosition>
          <doi>10.1016/0017-9310(68)90060-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181689</mtid>
          <link>/api/reference/61181689</link>
          <label>110. Saleh 2007: Working fluids for low-temperature organic Rankine cycles., Energy, 32, p. 1210, DOI: 10.1016/j.energy.2006.07.001</label>
          <listPosition>110</listPosition>
          <doi>10.1016/j.energy.2006.07.001</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181690</mtid>
          <link>/api/reference/61181690</link>
          <label>111. Wang 2011: Study of working fluid selection of organic Rankine cycle (ORC) for engine waste heat recovery., Energy, 36, p. 3406, DOI: 10.1016/j.energy.2011.03.041</label>
          <listPosition>111</listPosition>
          <doi>10.1016/j.energy.2011.03.041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181691</mtid>
          <link>/api/reference/61181691</link>
          <label>112. Dai 2009: Parametric optimization and comparative study of organic Rankine cycle (ORC) for low grade waste heat recovery., Energy Convers Manage, 50, p. 576, DOI: 10.1016/j.enconman.2008.10.018</label>
          <listPosition>112</listPosition>
          <doi>10.1016/j.enconman.2008.10.018</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181692</mtid>
          <link>/api/reference/61181692</link>
          <label>113. Hettiarachchi 2007: Optimum design criteria for an organic Rankine cycle using low-temperature geothermal heat sources., Energy, 32, p. 1698, DOI: 10.1016/j.energy.2007.01.005</label>
          <listPosition>113</listPosition>
          <doi>10.1016/j.energy.2007.01.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181693</mtid>
          <link>/api/reference/61181693</link>
          <label>114. 2021: IPCC, 2021: Summary for policymakers.Climate change 2021: The physical science basis. contribution of working group I to the sixth assessment report of the intergovernmental panel on climate change, Vol. 6, p. 1</label>
          <listPosition>114</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181694</mtid>
          <link>/api/reference/61181694</link>
          <label>115. Bolaji 2013: Ozone depletion and global warming: Case for the use of natural refrigerant – a review., Renew Sustain Energy Rev, 18, p. 49, DOI: 10.1016/j.rser.2012.10.008</label>
          <listPosition>115</listPosition>
          <doi>10.1016/j.rser.2012.10.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181695</mtid>
          <link>/api/reference/61181695</link>
          <label>116. Zühlsdorf 2018: Analysis of temperature glide matching of heat pumps with zeotropic working fluid mixtures for different temperature glides., Energy, 153, p. 650, DOI: 10.1016/j.energy.2018.04.048</label>
          <listPosition>116</listPosition>
          <doi>10.1016/j.energy.2018.04.048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181696</mtid>
          <link>/api/reference/61181696</link>
          <label>117. Papadopoulos 2021: Integrated design of working fluid mixtures and absorption refrigeration cycles., Front Chem Eng, 3, DOI: 10.3389/fceng.2021.622998</label>
          <listPosition>117</listPosition>
          <doi>10.3389/fceng.2021.622998</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181697</mtid>
          <link>/api/reference/61181697</link>
          <label>118. Ng 2015: Challenges and opportunities in computer-aided molecular design., Comput Chem Eng, 81, p. 115, DOI: 10.1016/j.compchemeng.2015.03.009</label>
          <listPosition>118</listPosition>
          <doi>10.1016/j.compchemeng.2015.03.009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181698</mtid>
          <link>/api/reference/61181698</link>
          <label>119. Kuprasertwong 2021: Computer-aided refrigerant design: New developments.Proceedings of the 31st european symposium on computer aided process engineering, Vol. 31, p. 19</label>
          <listPosition>119</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181699</mtid>
          <link>/api/reference/61181699</link>
          <label>120. Sadreddinia 2018: Thermodynamic analysis of a new cascade ORC and transcritical CO_2 cycle to recover energy from medium temperature heat source and liquefied natural gas., Energy Convers Manage, 167, p. 9, DOI: 10.1016/j.enconman.2018.04.093</label>
          <listPosition>120</listPosition>
          <doi>10.1016/j.enconman.2018.04.093</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181700</mtid>
          <link>/api/reference/61181700</link>
          <label>121. Kosmadakis 2009: Economic assessment of a two-stage solar organic Rankine cycle for reverse osmosis desalination., Renew Energy, 34, p. 1579, DOI: 10.1016/j.renene.2008.11.007</label>
          <listPosition>121</listPosition>
          <doi>10.1016/j.renene.2008.11.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181701</mtid>
          <link>/api/reference/61181701</link>
          <label>122. Mago 2008: An examination of regenerative organic Rankine cycles using dry fluids., Appl Therm Eng, 28, p. 998, DOI: 10.1016/j.applthermaleng.2007.06.025</label>
          <listPosition>122</listPosition>
          <doi>10.1016/j.applthermaleng.2007.06.025</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181702</mtid>
          <link>/api/reference/61181702</link>
          <label>123. Dipippo 2007: Ideal thermal efficiency for geothermal binary plants., Geothermics, 36, p. 276, DOI: 10.1016/j.geothermics.2007.03.002</label>
          <listPosition>123</listPosition>
          <doi>10.1016/j.geothermics.2007.03.002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181703</mtid>
          <link>/api/reference/61181703</link>
          <label>124. Lecompte S, van den Broek M, De Paepe M. Thermodynamic analysis of the partially evaporating trilateral cycle. In: Proceedings of the 2nd international seminar on ORC power systems. Vol. 2, 2013, p. 1–4.</label>
          <listPosition>124</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181704</mtid>
          <link>/api/reference/61181704</link>
          <label>125. Schuster 2010: Efficiency optimization potential in supercritical organic rankine cycles., Energy, 35, p. 1033, DOI: 10.1016/j.energy.2009.06.019</label>
          <listPosition>125</listPosition>
          <doi>10.1016/j.energy.2009.06.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181705</mtid>
          <link>/api/reference/61181705</link>
          <label>126. Yu 2019: An updated review of recent advances on modified technologies in transcritical CO_2 refrigeration cycle., Energy, 189, DOI: 10.1016/j.energy.2019.116147</label>
          <listPosition>126</listPosition>
          <doi>10.1016/j.energy.2019.116147</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181706</mtid>
          <link>/api/reference/61181706</link>
          <label>127. Radulovic 2014: On the potential of zeotropic mixtures in supercritical ORC powered by geothermal energy source., Energy Convers Manage, 88, p. 365, DOI: 10.1016/j.enconman.2014.08.048</label>
          <listPosition>127</listPosition>
          <doi>10.1016/j.enconman.2014.08.048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181707</mtid>
          <link>/api/reference/61181707</link>
          <label>128. Yang 2013: Study of zeotropic mixtures of ORC (organic Rankine cycle) under engine various operating conditions., Energy, 58, p. 494, DOI: 10.1016/j.energy.2013.04.074</label>
          <listPosition>128</listPosition>
          <doi>10.1016/j.energy.2013.04.074</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181708</mtid>
          <link>/api/reference/61181708</link>
          <label>129. Song 2016: Parametric design and off-design analysis of organic Rankine cycle (ORC) system., Energy Convers Manage, 112, p. 157, DOI: 10.1016/j.enconman.2015.12.085</label>
          <listPosition>129</listPosition>
          <doi>10.1016/j.enconman.2015.12.085</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181709</mtid>
          <link>/api/reference/61181709</link>
          <label>130. Calise 2014: Thermoeconomic analysis and off-design performance of an organic Rankine cycle powered by medium-temperature heat sources., Sol Energy, 103, p. 595, DOI: 10.1016/j.solener.2013.09.031</label>
          <listPosition>130</listPosition>
          <doi>10.1016/j.solener.2013.09.031</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181710</mtid>
          <link>/api/reference/61181710</link>
          <label>131. Ibarra 2014: Performance of a 5 kWe organic Rankine cycle at part-load operation., Appl Energy, 120, p. 147, DOI: 10.1016/j.apenergy.2014.01.057</label>
          <listPosition>131</listPosition>
          <doi>10.1016/j.apenergy.2014.01.057</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181711</mtid>
          <link>/api/reference/61181711</link>
          <label>132. Dickes 2017: Modelling of organic rankine cycle power systems in off-design conditions: An experimentally-validated comparative study., Energy, 123, p. 710, DOI: 10.1016/j.energy.2017.01.130</label>
          <listPosition>132</listPosition>
          <doi>10.1016/j.energy.2017.01.130</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181712</mtid>
          <link>/api/reference/61181712</link>
          <label>133. Liu 2019: Off-design performance analysis of basic ORC, ORC using zeotropic mixtures and composition-adjustable ORC under optimal control strategy., Energy, 171, p. 95, DOI: 10.1016/j.energy.2018.12.195</label>
          <listPosition>133</listPosition>
          <doi>10.1016/j.energy.2018.12.195</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181713</mtid>
          <link>/api/reference/61181713</link>
          <label>134. Papadopoulos 2018: Computer-aided molecular design: Fundamentals, methods, and applications.Ref. modul. chem. mol. sci. chem. eng., p. 1</label>
          <listPosition>134</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181714</mtid>
          <link>/api/reference/61181714</link>
          <label>135. Qyyum 2022: Assessment of working fluids, thermal resources and cooling utilities for organic Rankine cycles: State-of-the-art comparison, challenges, commercial status, and future prospects., Energy Convers Manage, 252, DOI: 10.1016/j.enconman.2021.115055</label>
          <listPosition>135</listPosition>
          <doi>10.1016/j.enconman.2021.115055</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181715</mtid>
          <link>/api/reference/61181715</link>
          <label>136. Bamorovat Abadi 2017: Investigation of organic Rankine cycles with zeotropic mixtures as a working fluid: Advantages and issues., Renew Sustain Energy Rev, 73, p. 1000, DOI: 10.1016/j.rser.2017.02.020</label>
          <listPosition>136</listPosition>
          <doi>10.1016/j.rser.2017.02.020</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181716</mtid>
          <link>/api/reference/61181716</link>
          <label>137. Palma-Flores 2015: Optimal molecular design of working fluids for sustainable low-temperature energy recovery., Comput Chem Eng, 72, p. 334, DOI: 10.1016/j.compchemeng.2014.04.009</label>
          <listPosition>137</listPosition>
          <doi>10.1016/j.compchemeng.2014.04.009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181717</mtid>
          <link>/api/reference/61181717</link>
          <label>138. Reid 1987: The properties of gases and liquids</label>
          <listPosition>138</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181718</mtid>
          <link>/api/reference/61181718</link>
          <label>139. Austin 2016: Computer-aided molecular design: An introduction and review of tools, applications, and solution techniques., Chem Eng Res Des, 116, p. 2, DOI: 10.1016/j.cherd.2016.10.014</label>
          <listPosition>139</listPosition>
          <doi>10.1016/j.cherd.2016.10.014</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181719</mtid>
          <link>/api/reference/61181719</link>
          <label>140. Samudra 2013: Optimization-based framework for computer-aided molecular design., AIChE J, 59, p. 3686, DOI: 10.1002/aic.14112</label>
          <listPosition>140</listPosition>
          <doi>10.1002/aic.14112</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181720</mtid>
          <link>/api/reference/61181720</link>
          <label>141. Papadopoulos 2013: Toward optimum working fluid mixtures for organic Rankine cycles using molecular design and sensitivity analysis., Ind Eng Chem Res, 52, p. 12116, DOI: 10.1021/ie400968j</label>
          <listPosition>141</listPosition>
          <doi>10.1021/ie400968j</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181721</mtid>
          <link>/api/reference/61181721</link>
          <label>142. Adjiman 2021: Process systems engineering perspective on the design of materials and molecules., Ind Eng Chem Res, 60, p. 5194, DOI: 10.1021/acs.iecr.0c05399</label>
          <listPosition>142</listPosition>
          <doi>10.1021/acs.iecr.0c05399</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181722</mtid>
          <link>/api/reference/61181722</link>
          <label>143. Marrero-Morejón 2001: Group-contribution based estimation of pure component properties., Fluid Phase Equilib, 183–184, p. 183, DOI: 10.1016/S0378-3812(01)00431-9</label>
          <listPosition>143</listPosition>
          <doi>10.1016/S0378-3812(01)00431-9</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181723</mtid>
          <link>/api/reference/61181723</link>
          <label>144. Gross 2001: Perturbed-chain SAFT: An equation of state based on a perturbation theory for chain molecules., Ind Eng Chem Res, 40, p. 1244, DOI: 10.1021/ie0003887</label>
          <listPosition>144</listPosition>
          <doi>10.1021/ie0003887</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181724</mtid>
          <link>/api/reference/61181724</link>
          <label>145. Lafitte 2013: Accurate perturbation theory for chains of Mie soft-core segments (SAFT-VR Mie) for the description of vapour-liquid equilibria and derivative properties., J Chem Phys, 139</label>
          <listPosition>145</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181725</mtid>
          <link>/api/reference/61181725</link>
          <label>146. White 2018: Computer-aided working-fluid design, thermodynamic optimisation and thermoeconomic assessment of ORC systems for waste-heat recovery., Energy, 161, p. 1181, DOI: 10.1016/j.energy.2018.07.098</label>
          <listPosition>146</listPosition>
          <doi>10.1016/j.energy.2018.07.098</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181726</mtid>
          <link>/api/reference/61181726</link>
          <label>147. Stijepovic 2012: On the role of working fluid properties in organic Rankine cycle performance., Appl Therm Eng, 36, p. 406, DOI: 10.1016/j.applthermaleng.2011.10.057</label>
          <listPosition>147</listPosition>
          <doi>10.1016/j.applthermaleng.2011.10.057</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181727</mtid>
          <link>/api/reference/61181727</link>
          <label>148. Schwöbel 2017: High-throughput screening of working fluids for the organic rankine cycle (ORC) based on conductor-like screening model for realistic solvation (COSMO-RS) and thermodynamic process simulations., Ind Eng Chem Res, 56, p. 788, DOI: 10.1021/acs.iecr.6b03857</label>
          <listPosition>148</listPosition>
          <doi>10.1021/acs.iecr.6b03857</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181728</mtid>
          <link>/api/reference/61181728</link>
          <label>149. Wang 2012: Molecular entropy, thermal efficiency, and designing of working fluids for organic Rankine cycles., Int J Thermophys, 33, p. 970, DOI: 10.1007/s10765-012-1200-6</label>
          <listPosition>149</listPosition>
          <doi>10.1007/s10765-012-1200-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181729</mtid>
          <link>/api/reference/61181729</link>
          <label>150. Angelino 2000: Organic Rankine cycles (ORCs) for energy recovery from molten carbonate fuel cells.Proceedings of the intersociety energy conversion engineering conference, Vol. 2, p. 1400</label>
          <listPosition>150</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181730</mtid>
          <link>/api/reference/61181730</link>
          <label>151. Chys 2012: Potential of zeotropic mixtures as working fluids in organic Rankine cycles., Energy, 44, p. 623, DOI: 10.1016/j.energy.2012.05.030</label>
          <listPosition>151</listPosition>
          <doi>10.1016/j.energy.2012.05.030</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181731</mtid>
          <link>/api/reference/61181731</link>
          <label>152. Victor 2013: Composition optimisation of working fluids for organic Rankine cycles and Kalina cycles., Energy, 55, p. 114, DOI: 10.1016/j.energy.2013.03.069</label>
          <listPosition>152</listPosition>
          <doi>10.1016/j.energy.2013.03.069</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181732</mtid>
          <link>/api/reference/61181732</link>
          <label>153. Garg 2018: Economic optimization of organic Rankine cycle with pure fluids and mixtures for waste heat and solar applications using particle swarm optimization method., Energy Convers Manage, 165, p. 649, DOI: 10.1016/j.enconman.2018.03.086</label>
          <listPosition>153</listPosition>
          <doi>10.1016/j.enconman.2018.03.086</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181733</mtid>
          <link>/api/reference/61181733</link>
          <label>154. Kolahi 2018: Performance optimization and improvement of a flash-binary geothermal power plant using zeotropic mixtures with PSO algorithm., Geothermics, 74, p. 45, DOI: 10.1016/j.geothermics.2018.02.004</label>
          <listPosition>154</listPosition>
          <doi>10.1016/j.geothermics.2018.02.004</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181734</mtid>
          <link>/api/reference/61181734</link>
          <label>155. Heberle 2015: Thermo-economic evaluation of organic rankine cycles for geothermal power generation using zeotropic mixtures., Energies, 8, p. 2097, DOI: 10.3390/en8032097</label>
          <listPosition>155</listPosition>
          <doi>10.3390/en8032097</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181735</mtid>
          <link>/api/reference/61181735</link>
          <label>156. Wang 2019: Carbon footprint analysis of organic Rankine cycle system using zeotropic mixtures considering leak of fluid., J Clean Prod, 239, DOI: 10.1016/j.jclepro.2019.118095</label>
          <listPosition>156</listPosition>
          <doi>10.1016/j.jclepro.2019.118095</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181736</mtid>
          <link>/api/reference/61181736</link>
          <label>157. Han 2020: Thermodynamic analysis and optimization of an innovative geothermal-based organic Rankine cycle using zeotropic mixtures for power and hydrogen production., Int J Hydrog Energy, 45, p. 8282, DOI: 10.1016/j.ijhydene.2020.01.093</label>
          <listPosition>157</listPosition>
          <doi>10.1016/j.ijhydene.2020.01.093</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181737</mtid>
          <link>/api/reference/61181737</link>
          <label>158. Feng 2015: Thermoeconomic comparison between pure and mixture working fluids of organic Rankine cycles (ORCs) for low temperature waste heat recovery., Energy Convers Manage, 106, p. 859, DOI: 10.1016/j.enconman.2015.09.042</label>
          <listPosition>158</listPosition>
          <doi>10.1016/j.enconman.2015.09.042</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181738</mtid>
          <link>/api/reference/61181738</link>
          <label>159. Feng 2015: Performance comparison of low-grade ORCs (organic Rankine cycles) using R245fa, pentane and their mixtures based on the thermoeconomic multi-objective optimization and decision makings., Energy, 93, p. 2018, DOI: 10.1016/j.energy.2015.10.065</label>
          <listPosition>159</listPosition>
          <doi>10.1016/j.energy.2015.10.065</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181739</mtid>
          <link>/api/reference/61181739</link>
          <label>160. Tiwari 2017: Thermodynamic and multi-objective optimisation of solar-driven organic Rankine cycle using zeotropic mixtures., Int J Ambient Energy, 40, p. 135, DOI: 10.1080/01430750.2017.1378718</label>
          <listPosition>160</listPosition>
          <doi>10.1080/01430750.2017.1378718</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181740</mtid>
          <link>/api/reference/61181740</link>
          <label>161. Andreasen 2016: Multi-objective optimization of organic Rankine cycle power plants using pure and mixed working fluids., Energies, 9, p. 322, DOI: 10.3390/en9050322</label>
          <listPosition>161</listPosition>
          <doi>10.3390/en9050322</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181741</mtid>
          <link>/api/reference/61181741</link>
          <label>162. Oyewunmi 2016: Thermo-economic and heat transfer optimization of working-fluid mixtures in a low-temperature organic Rankine cycle system., Energies, 9, p. 448, DOI: 10.3390/en9060448</label>
          <listPosition>162</listPosition>
          <doi>10.3390/en9060448</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181742</mtid>
          <link>/api/reference/61181742</link>
          <label>163. Noriega Sanchez 2018: Designed binary mixtures for subcritical organic Rankine cycles based on multiobjective optimization., Energy Convers Manage, 156, p. 585, DOI: 10.1016/j.enconman.2017.11.050</label>
          <listPosition>163</listPosition>
          <doi>10.1016/j.enconman.2017.11.050</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181743</mtid>
          <link>/api/reference/61181743</link>
          <label>164. Nasir 2019: Performance assessment and multi objective optimization of an organic Rankine cycle driven cooling air conditioning system., Energy Build, 191, p. 13, DOI: 10.1016/j.enbuild.2019.03.012</label>
          <listPosition>164</listPosition>
          <doi>10.1016/j.enbuild.2019.03.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181744</mtid>
          <link>/api/reference/61181744</link>
          <label>165. Rodriguez Sotomonte 2021: Multi-objective optimization for a small biomass cooling and power cogeneration system using binary mixtures., Appl Therm Eng, 182, DOI: 10.1016/j.applthermaleng.2020.116045</label>
          <listPosition>165</listPosition>
          <doi>10.1016/j.applthermaleng.2020.116045</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181745</mtid>
          <link>/api/reference/61181745</link>
          <label>166. Micheli 2013: Performance analysis and working fluid optimization of a cogenerative organic Rankine cycle plant., J Energy Resour Technol Trans ASME, 135, DOI: 10.1115/1.4023098</label>
          <listPosition>166</listPosition>
          <doi>10.1115/1.4023098</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181746</mtid>
          <link>/api/reference/61181746</link>
          <label>167. Andreasen 2014: Selection and optimization of pure and mixed working fluids for low grade heat utilization using organic Rankine cycles., Energy, 73, p. 204, DOI: 10.1016/j.energy.2014.06.012</label>
          <listPosition>167</listPosition>
          <doi>10.1016/j.energy.2014.06.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181747</mtid>
          <link>/api/reference/61181747</link>
          <label>168. Molina-Thierry 2015: Simultaneous optimal design of organic mixtures and Rankine cycles for low-temperature energy recovery., Ind Eng Chem Res, 54, p. 3367, DOI: 10.1021/ie503675v</label>
          <listPosition>168</listPosition>
          <doi>10.1021/ie503675v</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181748</mtid>
          <link>/api/reference/61181748</link>
          <label>169. Satanphol 2017: A study on optimal composition of zeotropic working fluid in an organic Rankine cycle (ORC) for low grade heat recovery., Energy, 123, p. 326, DOI: 10.1016/j.energy.2017.02.024</label>
          <listPosition>169</listPosition>
          <doi>10.1016/j.energy.2017.02.024</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181749</mtid>
          <link>/api/reference/61181749</link>
          <label>170. Lee 2017: Optimal multicomponent working fluid of organic Rankine cycle for exergy transfer from liquefied natural gas regasification., Energy, 127, p. 489, DOI: 10.1016/j.energy.2017.03.126</label>
          <listPosition>170</listPosition>
          <doi>10.1016/j.energy.2017.03.126</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181750</mtid>
          <link>/api/reference/61181750</link>
          <label>171. Bernal-Lara 2017: Thermo-economic multiobjective optimization of a LOW temperature organic Rankine cycle for energy recovery., Ind Eng Chem Res, 56, p. 11477, DOI: 10.1021/acs.iecr.7b01198</label>
          <listPosition>171</listPosition>
          <doi>10.1021/acs.iecr.7b01198</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181751</mtid>
          <link>/api/reference/61181751</link>
          <label>172. Tzeng 2011: Multiple attribute decision making: methods and applications</label>
          <listPosition>172</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181752</mtid>
          <link>/api/reference/61181752</link>
          <label>173. Shannon 1948: A mathematical theory of communication., Bell Syst Tech J, 27, p. 379, DOI: 10.1002/j.1538-7305.1948.tb01338.x</label>
          <listPosition>173</listPosition>
          <doi>10.1002/j.1538-7305.1948.tb01338.x</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181753</mtid>
          <link>/api/reference/61181753</link>
          <label>174. Srinivasan 1973: Linear programming techniques for multidimensional analysis of preferences., Psychometrika, 38, p. 337, DOI: 10.1007/BF02291658</label>
          <listPosition>174</listPosition>
          <doi>10.1007/BF02291658</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181754</mtid>
          <link>/api/reference/61181754</link>
          <label>175. Micheli 2004: Application of biomass fed ORC power systems in the furniture manufacturing industrial district of pordenone: Part II: Development of thermodynamic cycle simulation model.Proceedings of 3rd international symposium on energy and environment</label>
          <listPosition>175</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181755</mtid>
          <link>/api/reference/61181755</link>
          <label>176. Sahinidis 1996: BARON: A general purpose global optimization software package., J Glob Optim, 8, p. 201, DOI: 10.1007/BF00138693</label>
          <listPosition>176</listPosition>
          <doi>10.1007/BF00138693</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181756</mtid>
          <link>/api/reference/61181756</link>
          <label>177. Boukouvala 2016: Global optimization advances in mixed-integer nonlinear programming, MINLP, and constrained derivative-free optimization, CDFO., European J Oper Res, 252, p. 701, DOI: 10.1016/j.ejor.2015.12.018</label>
          <listPosition>177</listPosition>
          <doi>10.1016/j.ejor.2015.12.018</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181757</mtid>
          <link>/api/reference/61181757</link>
          <label>178. Papadopoulos 2004: On the synthesis and optimization of liquid-liquid extraction processes using stochastic search methods., Comput Chem Eng, 28, p. 2391, DOI: 10.1016/j.compchemeng.2004.06.008</label>
          <listPosition>178</listPosition>
          <doi>10.1016/j.compchemeng.2004.06.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181758</mtid>
          <link>/api/reference/61181758</link>
          <label>179. Küçükoğlu 2015: A memory structure adapted simulated annealing algorithm for a green vehicle routing problem., Environ Sci Pollut Res, 22, p. 3279, DOI: 10.1007/s11356-014-3253-5</label>
          <listPosition>179</listPosition>
          <doi>10.1007/s11356-014-3253-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181759</mtid>
          <link>/api/reference/61181759</link>
          <label>180. Huster 2020: Working fluid selection for organic Rankine cycles via deterministic global optimization of design and operation., Optim Eng, 21, p. 517, DOI: 10.1007/s11081-019-09454-1</label>
          <listPosition>180</listPosition>
          <doi>10.1007/s11081-019-09454-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181760</mtid>
          <link>/api/reference/61181760</link>
          <label>181. Leigh 1973: A computer flowsheeting programme incorporating algebraic analysis of the problem structure</label>
          <listPosition>181</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181761</mtid>
          <link>/api/reference/61181761</link>
          <label>182. Letsios 2020: Approximation algorithms for process systems engineering., Comput Chem Eng, 132, DOI: 10.1016/j.compchemeng.2019.106599</label>
          <listPosition>182</listPosition>
          <doi>10.1016/j.compchemeng.2019.106599</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181762</mtid>
          <link>/api/reference/61181762</link>
          <label>183. Bongartz 2017: Deterministic global optimization of process flowsheets in a reduced space using McCormick relaxations., J Global Optim, 69, p. 761, DOI: 10.1007/s10898-017-0547-4</label>
          <listPosition>183</listPosition>
          <doi>10.1007/s10898-017-0547-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181763</mtid>
          <link>/api/reference/61181763</link>
          <label>184. Vasilas 2022: Approximate computing, skeleton programming and run-time scheduling in an algorithm for process design and controllability in distributed and heterogeneous infrastructures., Comput Chem Eng, 164, DOI: 10.1016/j.compchemeng.2022.107874</label>
          <listPosition>184</listPosition>
          <doi>10.1016/j.compchemeng.2022.107874</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181764</mtid>
          <link>/api/reference/61181764</link>
          <label>185. Hu 2021: A review of multi-objective optimization in organic Rankine cycle (ORC) system design., Energies, 14, p. 6492, DOI: 10.3390/en14206492</label>
          <listPosition>185</listPosition>
          <doi>10.3390/en14206492</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181765</mtid>
          <link>/api/reference/61181765</link>
          <label>186. Lee 2020: A comparative study of multi-objective optimization methodologies for molecular and process design., Comput Chem Eng, 136, DOI: 10.1016/j.compchemeng.2020.106802</label>
          <listPosition>186</listPosition>
          <doi>10.1016/j.compchemeng.2020.106802</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181766</mtid>
          <link>/api/reference/61181766</link>
          <label>187. Liaw 2003: Binary liquid solutions exhibiting minimum flash-point behavior., J Loss Prev Process Ind, 16, p. 173, DOI: 10.1016/S0950-4230(03)00004-4</label>
          <listPosition>187</listPosition>
          <doi>10.1016/S0950-4230(03)00004-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181767</mtid>
          <link>/api/reference/61181767</link>
          <label>188. Fleitmann 2021: COSMO-susCAMPD: Sustainable solvents from combining computer-aided molecular and process design with predictive life cycle assessment., Chem Eng Sci, 245, DOI: 10.1016/j.ces.2021.116863</label>
          <listPosition>188</listPosition>
          <doi>10.1016/j.ces.2021.116863</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181768</mtid>
          <link>/api/reference/61181768</link>
          <label>189. Xi 2013: Parametric optimization of regenerative organic Rankine cycle (ORC) for low grade waste heat recovery using genetic algorithm., Energy, 58, p. 473, DOI: 10.1016/j.energy.2013.06.039</label>
          <listPosition>189</listPosition>
          <doi>10.1016/j.energy.2013.06.039</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181769</mtid>
          <link>/api/reference/61181769</link>
          <label>190. Woodland 2013: Thermodynamic comparison of organic Rankine cycles employing liquid-flooded expansion or a solution circuit., Appl Therm Eng, 61, p. 859, DOI: 10.1016/j.applthermaleng.2013.05.020</label>
          <listPosition>190</listPosition>
          <doi>10.1016/j.applthermaleng.2013.05.020</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181770</mtid>
          <link>/api/reference/61181770</link>
          <label>191. Walraven 2015: Economic system optimization of air-cooled organic Rankine cycles powered by low-temperature geothermal heat sources., Energy, 80, p. 104, DOI: 10.1016/j.energy.2014.11.048</label>
          <listPosition>191</listPosition>
          <doi>10.1016/j.energy.2014.11.048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181771</mtid>
          <link>/api/reference/61181771</link>
          <label>192. Theamtat 2020: Fluid selection and optimal operating conditions of an ORC, and trilateral Rankine cycle power plant for a heat source temperature of 210°C – 250°C., Trans TSME, J Res Appl Mech Eng, 8, p. 135</label>
          <listPosition>192</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181772</mtid>
          <link>/api/reference/61181772</link>
          <label>193. Emadi 2020: Working-fluid selection and thermoeconomic optimisation of a combined cycle cogeneration dual-loop organic Rankine cycle (ORC) system for solid oxide fuel cell (SOFC) waste-heat recovery., Appl Energy, 261, DOI: 10.1016/j.apenergy.2019.114384</label>
          <listPosition>193</listPosition>
          <doi>10.1016/j.apenergy.2019.114384</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181773</mtid>
          <link>/api/reference/61181773</link>
          <label>194. Stijepovic 2014: An exergy composite curves approach for the design of optimum multi-pressure organic Rankine cycle processes., Energy, 69, p. 285, DOI: 10.1016/j.energy.2014.03.006</label>
          <listPosition>194</listPosition>
          <doi>10.1016/j.energy.2014.03.006</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181774</mtid>
          <link>/api/reference/61181774</link>
          <label>195. Stijepovic 2017: Organic Rankine cycle system performance targeting and design for multiple heat sources with simultaneous working fluid selection., J Clean Prod, 142, p. 1950, DOI: 10.1016/j.jclepro.2016.11.088</label>
          <listPosition>195</listPosition>
          <doi>10.1016/j.jclepro.2016.11.088</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181775</mtid>
          <link>/api/reference/61181775</link>
          <label>196. Toffolo 2014: A synthesis/design optimization algorithm for Rankine cycle based energy systems., Energy, 66, p. 115, DOI: 10.1016/j.energy.2014.01.070</label>
          <listPosition>196</listPosition>
          <doi>10.1016/j.energy.2014.01.070</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181776</mtid>
          <link>/api/reference/61181776</link>
          <label>197. Lazzaretto 2018: SYNTHSEP: A general methodology for the synthesis of energy system configurations beyond superstructures., Energy, 147, p. 924, DOI: 10.1016/j.energy.2018.01.075</label>
          <listPosition>197</listPosition>
          <doi>10.1016/j.energy.2018.01.075</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181777</mtid>
          <link>/api/reference/61181777</link>
          <label>198. Wang 2015: Superstructure-free synthesis and optimization of thermal power plants., Energy, 91, p. 700, DOI: 10.1016/j.energy.2015.08.068</label>
          <listPosition>198</listPosition>
          <doi>10.1016/j.energy.2015.08.068</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181778</mtid>
          <link>/api/reference/61181778</link>
          <label>199. Wang 2016: Multi-objective superstructure-free synthesis and optimization of thermal power plants., Energy, 116, p. 1104, DOI: 10.1016/j.energy.2016.10.007</label>
          <listPosition>199</listPosition>
          <doi>10.1016/j.energy.2016.10.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181779</mtid>
          <link>/api/reference/61181779</link>
          <label>200. Huster 2020: Deterministic global superstructure-based optimization of an organic Rankine cycle., Comput Chem Eng, 141, DOI: 10.1016/j.compchemeng.2020.106996</label>
          <listPosition>200</listPosition>
          <doi>10.1016/j.compchemeng.2020.106996</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181780</mtid>
          <link>/api/reference/61181780</link>
          <label>201. Kermani 2018: Generic superstructure synthesis of organic Rankine cycles for waste heat recovery in industrial processes., Appl Energy, 212, p. 1203, DOI: 10.1016/j.apenergy.2017.12.094</label>
          <listPosition>201</listPosition>
          <doi>10.1016/j.apenergy.2017.12.094</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181781</mtid>
          <link>/api/reference/61181781</link>
          <label>202. Bao 2018: Simultaneous optimization of system structure and working fluid for the three-stage condensation Rankine cycle utilizing LNG cold energy., Appl Therm Eng, 140, p. 120, DOI: 10.1016/j.applthermaleng.2018.05.049</label>
          <listPosition>202</listPosition>
          <doi>10.1016/j.applthermaleng.2018.05.049</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181782</mtid>
          <link>/api/reference/61181782</link>
          <label>203. Hipólito-Valencia 2013: Optimal integration of organic Rankine cycles with industrial processes., Energy Convers Manage, 73, p. 285, DOI: 10.1016/j.enconman.2013.04.036</label>
          <listPosition>203</listPosition>
          <doi>10.1016/j.enconman.2013.04.036</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181783</mtid>
          <link>/api/reference/61181783</link>
          <label>204. Chen 2014: Heat-exchanger network synthesis involving organic Rankine cycle for waste heat recovery., Ind Eng Chem Res, 53, p. 16924, DOI: 10.1021/ie500301s</label>
          <listPosition>204</listPosition>
          <doi>10.1021/ie500301s</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181784</mtid>
          <link>/api/reference/61181784</link>
          <label>205. Lira-Barragán 2014: Sustainable integration of trigeneration systems with heat exchanger networks., Ind Eng Chem Res, 53, p. 2732, DOI: 10.1021/ie4021232</label>
          <listPosition>205</listPosition>
          <doi>10.1021/ie4021232</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181785</mtid>
          <link>/api/reference/61181785</link>
          <label>206. Yu 2017: Simultaneous heat integration and techno-economic optimization of organic Rankine cycle (ORC) for multiple waste heat stream recovery., Energy, 119, p. 322, DOI: 10.1016/j.energy.2016.12.061</label>
          <listPosition>206</listPosition>
          <doi>10.1016/j.energy.2016.12.061</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181786</mtid>
          <link>/api/reference/61181786</link>
          <label>207. Elsido 2019: A bilevel decomposition method for the simultaneous heat integration and synthesis of steam/organic Rankine cycles., Comput Chem Eng, 128, p. 228, DOI: 10.1016/j.compchemeng.2019.05.041</label>
          <listPosition>207</listPosition>
          <doi>10.1016/j.compchemeng.2019.05.041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181787</mtid>
          <link>/api/reference/61181787</link>
          <label>208. Marechal F, Kalitventzeff B. A Methodology for the Optimal Insertion of Organic Rankine Cycles in Industrial Processes. In: 2nd international symposium on process integration halifax Canada. 2004, p. 1–15.</label>
          <listPosition>208</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181788</mtid>
          <link>/api/reference/61181788</link>
          <label>209. Sadeghi 2016: Thermodynamic analysis and multi-objective optimization of various ORC (organic Rankine cycle) configurations using zeotropic mixtures., Energy, 109, p. 791, DOI: 10.1016/j.energy.2016.05.022</label>
          <listPosition>209</listPosition>
          <doi>10.1016/j.energy.2016.05.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181789</mtid>
          <link>/api/reference/61181789</link>
          <label>210. Lee 2017: Superstructure based techno-economic optimization of the organic Rankine cycle using LNG cryogenic energy., Energy, 137, p. 83, DOI: 10.1016/j.energy.2017.07.019</label>
          <listPosition>210</listPosition>
          <doi>10.1016/j.energy.2017.07.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181790</mtid>
          <link>/api/reference/61181790</link>
          <label>211. Scaccabarozzi 2017: Thermodynamic optimization of heat recovery ORCs for heavy duty internal combustion engine: pure fluids vs. zeotropic mixtures., Energy Procedia, 129, p. 168, DOI: 10.1016/j.egypro.2017.09.099</label>
          <listPosition>211</listPosition>
          <doi>10.1016/j.egypro.2017.09.099</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181791</mtid>
          <link>/api/reference/61181791</link>
          <label>212. Scaccabarozzi 2018: Comparison of working fluids and cycle optimization for heat recovery ORCs from large internal combustion engines., Energy, 158, p. 396, DOI: 10.1016/j.energy.2018.06.017</label>
          <listPosition>212</listPosition>
          <doi>10.1016/j.energy.2018.06.017</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181792</mtid>
          <link>/api/reference/61181792</link>
          <label>213. Wang 2021: Fluid selection and advanced exergy analysis of dual-loop ORC using zeotropic mixture., Appl Therm Eng, 185, DOI: 10.1016/j.applthermaleng.2020.116423</label>
          <listPosition>213</listPosition>
          <doi>10.1016/j.applthermaleng.2020.116423</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181793</mtid>
          <link>/api/reference/61181793</link>
          <label>214. Lin 2020: Intelligent collaborative attainment of structure configuration and fluid selection for the organic Rankine cycle., Appl Energy, 264, DOI: 10.1016/j.apenergy.2020.114743</label>
          <listPosition>214</listPosition>
          <doi>10.1016/j.apenergy.2020.114743</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181794</mtid>
          <link>/api/reference/61181794</link>
          <label>215. Soffiato 2015: Design optimization of ORC systems for waste heat recovery on board a LNG carrier., Energy Convers Manage, 92, p. 523, DOI: 10.1016/j.enconman.2014.12.085</label>
          <listPosition>215</listPosition>
          <doi>10.1016/j.enconman.2014.12.085</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181795</mtid>
          <link>/api/reference/61181795</link>
          <label>216. Preißinger 2017: Multi-criteria evaluation of several million working fluids for waste heat recovery by means of organic Rankine cycle in passenger cars and heavy-duty trucks., Appl Energy, 206, p. 887, DOI: 10.1016/j.apenergy.2017.08.212</label>
          <listPosition>216</listPosition>
          <doi>10.1016/j.apenergy.2017.08.212</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181796</mtid>
          <link>/api/reference/61181796</link>
          <label>217. Papadopoulos 2006: Multiobjective molecular design for integrated process-solvent systems synthesis., AIChE J, 52, p. 1057, DOI: 10.1002/aic.10715</label>
          <listPosition>217</listPosition>
          <doi>10.1002/aic.10715</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181797</mtid>
          <link>/api/reference/61181797</link>
          <label>218. Papadopoulos 2020: Systematic assessment of working fluid mixtures for absorption refrigeration based on techno-economic, environmental, health and safety performance., Energy Convers Manage, 223, DOI: 10.1016/j.enconman.2020.113262</label>
          <listPosition>218</listPosition>
          <doi>10.1016/j.enconman.2020.113262</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181798</mtid>
          <link>/api/reference/61181798</link>
          <label>219. Papadopoulos 2019: Absorption refrigeration processes with organic working fluid mixtures- a review., Renew Sustain Energy Rev, 109, p. 239, DOI: 10.1016/j.rser.2019.04.016</label>
          <listPosition>219</listPosition>
          <doi>10.1016/j.rser.2019.04.016</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181799</mtid>
          <link>/api/reference/61181799</link>
          <label>220. Buskens 2012: The ESA NLP solver WORHP., Springer Optim Appl, 73, p. 85</label>
          <listPosition>220</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181800</mtid>
          <link>/api/reference/61181800</link>
          <label>221. Andersson 2012: CasADi: A symbolic package for automatic differentiation and optimal control., Lect Notes Comput Sci Eng, 87 LNCSE, p. 297, DOI: 10.1007/978-3-642-30023-3_27</label>
          <listPosition>221</listPosition>
          <doi>10.1007/978-3-642-30023-3_27</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181801</mtid>
          <link>/api/reference/61181801</link>
          <label>222. Walraven 2014: Optimum configuration of shell-and-tube heat exchangers for the use in low-temperature organic Rankine cycles., Energy Convers Manage, 83, p. 177, DOI: 10.1016/j.enconman.2014.03.066</label>
          <listPosition>222</listPosition>
          <doi>10.1016/j.enconman.2014.03.066</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181802</mtid>
          <link>/api/reference/61181802</link>
          <label>223. Linnhoff 1992: Shaftwork targets for low-temperature process design., Chem Eng Sci, 47, p. 2081, DOI: 10.1016/0009-2509(92)80324-6</label>
          <listPosition>223</listPosition>
          <doi>10.1016/0009-2509(92)80324-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181803</mtid>
          <link>/api/reference/61181803</link>
          <label>224. Linnhoff 1978: Synthesis of heat exchanger networks: I. Systematic generation of energy optimal networks., AIChE J, 24, p. 633, DOI: 10.1002/aic.690240411</label>
          <listPosition>224</listPosition>
          <doi>10.1002/aic.690240411</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181804</mtid>
          <link>/api/reference/61181804</link>
          <label>225. Li 2018: Thermo-economic performance analyses and comparison of two turbine layouts for organic rankine cycles with dual-pressure evaporation., Energy Convers Manage, 164, p. 603, DOI: 10.1016/j.enconman.2018.03.029</label>
          <listPosition>225</listPosition>
          <doi>10.1016/j.enconman.2018.03.029</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181805</mtid>
          <link>/api/reference/61181805</link>
          <label>226. Lazzaretto 2008: A method to separate the problem of heat transfer interactions in the synthesis of thermal systems., Energy, 33, p. 163, DOI: 10.1016/j.energy.2007.07.015</label>
          <listPosition>226</listPosition>
          <doi>10.1016/j.energy.2007.07.015</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181806</mtid>
          <link>/api/reference/61181806</link>
          <label>227. Hipólito-Valencia 2014: Optimal design of inter-plant waste energy integration., Appl Therm Eng, 62, p. 633, DOI: 10.1016/j.applthermaleng.2013.10.015</label>
          <listPosition>227</listPosition>
          <doi>10.1016/j.applthermaleng.2013.10.015</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181807</mtid>
          <link>/api/reference/61181807</link>
          <label>228. Duran 1986: Simultaneous optimization and heat integration of chemical processes., AIChE J, 32, p. 123, DOI: 10.1002/aic.690320114</label>
          <listPosition>228</listPosition>
          <doi>10.1002/aic.690320114</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181808</mtid>
          <link>/api/reference/61181808</link>
          <label>229. Elsido 2017: A systematic methodology for the techno-economic optimization of organic Rankine cycles., Energy Procedia, 129, p. 26, DOI: 10.1016/j.egypro.2017.09.171</label>
          <listPosition>229</listPosition>
          <doi>10.1016/j.egypro.2017.09.171</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181809</mtid>
          <link>/api/reference/61181809</link>
          <label>230. Papoulias 1983: A structural optimization approach in process synthesis—II: Heat recovery networks., Comput Chem Eng, 7, p. 707, DOI: 10.1016/0098-1354(83)85023-6</label>
          <listPosition>230</listPosition>
          <doi>10.1016/0098-1354(83)85023-6</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181810</mtid>
          <link>/api/reference/61181810</link>
          <label>231. Györke 2019: A simple method of finding new dry and isentropic working fluids for organic rankine cycle., Energies, 12, p. 480, DOI: 10.3390/en12030480</label>
          <listPosition>231</listPosition>
          <doi>10.3390/en12030480</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181811</mtid>
          <link>/api/reference/61181811</link>
          <label>232. Imre 2019: Various ways of adiabatic expansion in organic rankine cycle (ORC) and in trilateral flash cycle (TFC)., Z Phys Chem, 233, p. 577, DOI: 10.1515/zpch-2018-1292</label>
          <listPosition>232</listPosition>
          <doi>10.1515/zpch-2018-1292</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181812</mtid>
          <link>/api/reference/61181812</link>
          <label>233. Groniewsky 2023: Simultaneous working fluid and expander selection method for reaching low-threshold technology organic rankine cycle (ORC) design., Energy Sci Eng, 11, p. 2330, DOI: 10.1002/ese3.1457</label>
          <listPosition>233</listPosition>
          <doi>10.1002/ese3.1457</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181813</mtid>
          <link>/api/reference/61181813</link>
          <label>234. Papadopoulos 2006: Efficient integration of optimal solvent and process design using molecular clustering., Chem Eng Sci, 61, p. 6316, DOI: 10.1016/j.ces.2006.06.006</label>
          <listPosition>234</listPosition>
          <doi>10.1016/j.ces.2006.06.006</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181814</mtid>
          <link>/api/reference/61181814</link>
          <label>235. Papadopoulos 2005: A unified framework for integrated process and molecular design., Chem Eng Res Des, 83, p. 674, DOI: 10.1205/cherd.04349</label>
          <listPosition>235</listPosition>
          <doi>10.1205/cherd.04349</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181815</mtid>
          <link>/api/reference/61181815</link>
          <label>236. Park 2018: Review of organic rankine cycle experimental data trends., Energy Convers Manag, 173, p. 679, DOI: 10.1016/j.enconman.2018.07.097</label>
          <listPosition>236</listPosition>
          <doi>10.1016/j.enconman.2018.07.097</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181816</mtid>
          <link>/api/reference/61181816</link>
          <label>237. Pardiñas ÁÁ, Pilarczyk M, Agromayor R, Nord LO. Design of an experimental orc expander setup using natural working fluids. In: Proceedings of the fifth international seminar on ORC power systems. 2019, p. 1–8.</label>
          <listPosition>237</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181817</mtid>
          <link>/api/reference/61181817</link>
          <label>238. Jradi 2014: Experimental investigation of a biomass-fuelled micro-scale tri-generation system with an organic rankine cycle and liquid desiccant cooling unit., Energy, 71, p. 80, DOI: 10.1016/j.energy.2014.04.077</label>
          <listPosition>238</listPosition>
          <doi>10.1016/j.energy.2014.04.077</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181818</mtid>
          <link>/api/reference/61181818</link>
          <label>239. Yun 2015: Experimental investigation of an organic rankine cycle with multiple expanders used in parallel., Appl Energy, 145, p. 246, DOI: 10.1016/j.apenergy.2015.02.022</label>
          <listPosition>239</listPosition>
          <doi>10.1016/j.apenergy.2015.02.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181819</mtid>
          <link>/api/reference/61181819</link>
          <label>240. White 2015: System and component modelling and optimisation for an efficient 10kWe low-temperature organic Rankine cycle utilising a radial inflow expander.Proceedings of the institution of mechanical engineers, part a: journal of power and energy, Vol. 229</label>
          <listPosition>240</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181820</mtid>
          <link>/api/reference/61181820</link>
          <label>241. Bekiloğlu 2019: Multi-objective optimization of ORC parameters and selection of working fluid using preliminary radial inflow turbine design., Energy Convers Manage, 183, DOI: 10.1016/j.enconman.2018.12.039</label>
          <listPosition>241</listPosition>
          <doi>10.1016/j.enconman.2018.12.039</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181821</mtid>
          <link>/api/reference/61181821</link>
          <label>242. Fiaschi 2015: Design and performance prediction of radial ORC turboexpanders., Appl Energy, 138, p. 517, DOI: 10.1016/j.apenergy.2014.10.052</label>
          <listPosition>242</listPosition>
          <doi>10.1016/j.apenergy.2014.10.052</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181822</mtid>
          <link>/api/reference/61181822</link>
          <label>243. Rahbar 2015: Modelling and optimization of organic Rankine cycle based on a small-scale radial inflow turbine., Energy Convers Manage, 91, DOI: 10.1016/j.enconman.2014.12.003</label>
          <listPosition>243</listPosition>
          <doi>10.1016/j.enconman.2014.12.003</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181823</mtid>
          <link>/api/reference/61181823</link>
          <label>244. Rahbar 2015: Parametric analysis and optimization of a small-scale radial turbine for organic Rankine cycle., Energy, 83, p. 696, DOI: 10.1016/j.energy.2015.02.079</label>
          <listPosition>244</listPosition>
          <doi>10.1016/j.energy.2015.02.079</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181824</mtid>
          <link>/api/reference/61181824</link>
          <label>245. Al Jubori 2016: Development of micro-scale axial and radial turbines for low-temperature heat source driven organic Rankine cycle., Energy Convers Manage, 130, p. 141, DOI: 10.1016/j.enconman.2016.10.043</label>
          <listPosition>245</listPosition>
          <doi>10.1016/j.enconman.2016.10.043</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181825</mtid>
          <link>/api/reference/61181825</link>
          <label>246. Li 2019: Multi-objective optimization and improved analysis of an organic Rankine cycle coupled with the dynamic turbine efficiency model., Appl Therm Eng, 150, p. 912, DOI: 10.1016/j.applthermaleng.2019.01.058</label>
          <listPosition>246</listPosition>
          <doi>10.1016/j.applthermaleng.2019.01.058</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181826</mtid>
          <link>/api/reference/61181826</link>
          <label>247. Meroni 2018: Optimization of organic Rankine cycle power systems considering multistage axial turbine design., Appl Energy, 209, p. 339, DOI: 10.1016/j.apenergy.2017.09.068</label>
          <listPosition>247</listPosition>
          <doi>10.1016/j.apenergy.2017.09.068</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181827</mtid>
          <link>/api/reference/61181827</link>
          <label>248. Al Jubori 2017: Performance enhancement of a small-scale organic Rankine cycle radial-inflow turbine through multi-objective optimization algorithm., Energy, 131, p. 297, DOI: 10.1016/j.energy.2017.05.022</label>
          <listPosition>248</listPosition>
          <doi>10.1016/j.energy.2017.05.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181828</mtid>
          <link>/api/reference/61181828</link>
          <label>249. Han 2018: Multi-objective optimization and sensitivity analysis of an organic Rankine cycle coupled with a one-dimensional radial-inflow turbine efficiency prediction model., Energy Convers Manage, 166, DOI: 10.1016/j.enconman.2018.04.022</label>
          <listPosition>249</listPosition>
          <doi>10.1016/j.enconman.2018.04.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181829</mtid>
          <link>/api/reference/61181829</link>
          <label>250. Lecompte 2013: Part load based thermo-economic optimization of the organic Rankine cycle (ORC) applied to a combined heat and power (CHP) system., Appl Energy, 111, p. 871, DOI: 10.1016/j.apenergy.2013.06.043</label>
          <listPosition>250</listPosition>
          <doi>10.1016/j.apenergy.2013.06.043</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181830</mtid>
          <link>/api/reference/61181830</link>
          <label>251. Pierobon 2013: Multi-objective optimization of organic Rankine cycles for waste heat recovery: Application in an offshore platform., Energy, 58, p. 538, DOI: 10.1016/j.energy.2013.05.039</label>
          <listPosition>251</listPosition>
          <doi>10.1016/j.energy.2013.05.039</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181831</mtid>
          <link>/api/reference/61181831</link>
          <label>252. Di Battista 2018: On the limiting factors of the waste heat recovery via ORC-based power units for on-the-road transportation sector., Energy Convers Manage, 155, p. 68, DOI: 10.1016/j.enconman.2017.10.091</label>
          <listPosition>252</listPosition>
          <doi>10.1016/j.enconman.2017.10.091</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181832</mtid>
          <link>/api/reference/61181832</link>
          <label>253. Yang 2017: Thermoeconomic multi-objective optimization of a dual loop organic Rankine cycle (ORC) for CNG engine waste heat recovery., Appl Energy, 205, p. 1100, DOI: 10.1016/j.apenergy.2017.08.127</label>
          <listPosition>253</listPosition>
          <doi>10.1016/j.apenergy.2017.08.127</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181833</mtid>
          <link>/api/reference/61181833</link>
          <label>254. Wang 2018: An innovative organic Rankine cycle (ORC) based ocean thermal energy conversion (OTEC) system with performance simulation and multi-objective optimization., Appl Therm Eng, 145, p. 743, DOI: 10.1016/j.applthermaleng.2018.09.075</label>
          <listPosition>254</listPosition>
          <doi>10.1016/j.applthermaleng.2018.09.075</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181834</mtid>
          <link>/api/reference/61181834</link>
          <label>255. Rosset 2018: Multi-objective optimization of turbo-ORC systems for waste heat recovery on passenger car engines., Energy, 159, p. 751, DOI: 10.1016/j.energy.2018.06.193</label>
          <listPosition>255</listPosition>
          <doi>10.1016/j.energy.2018.06.193</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181835</mtid>
          <link>/api/reference/61181835</link>
          <label>256. Jankowski 2019: Determination of an optimal pinch point temperature difference interval in ORC power plant using multi-objective approach., J Clean Prod, 217, p. 798, DOI: 10.1016/j.jclepro.2019.01.250</label>
          <listPosition>256</listPosition>
          <doi>10.1016/j.jclepro.2019.01.250</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181836</mtid>
          <link>/api/reference/61181836</link>
          <label>257. Jankowski 2019: Multi-objective approach for determination of optimal operating parameters in low-temperature ORC power plant., Energy Convers Manage, 200, DOI: 10.1016/j.enconman.2019.112075</label>
          <listPosition>257</listPosition>
          <doi>10.1016/j.enconman.2019.112075</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181837</mtid>
          <link>/api/reference/61181837</link>
          <label>258. Bianchi 2022: Performance and total warming impact assessment of pure fluids and mixtures replacing HFCs in micro-ORC energy systems., Appl Therm Eng, 203, DOI: 10.1016/j.applthermaleng.2021.117888</label>
          <listPosition>258</listPosition>
          <doi>10.1016/j.applthermaleng.2021.117888</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181838</mtid>
          <link>/api/reference/61181838</link>
          <label>259. Grelet V, Reiche T, Guillaume L, Lemort V. Optimal waste heat recovery Rankine based for heavy duty applications. In: Fista world automotive congress. Maastricht; 2014.</label>
          <listPosition>259</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181839</mtid>
          <link>/api/reference/61181839</link>
          <label>260. Shu 2017: Scan of working fluids based on dynamic response characters for organic Rankine cycle using for engine waste heat recovery., Energy, 133, p. 609, DOI: 10.1016/j.energy.2017.05.003</label>
          <listPosition>260</listPosition>
          <doi>10.1016/j.energy.2017.05.003</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181840</mtid>
          <link>/api/reference/61181840</link>
          <label>261. Wang 2017: Dynamic response performance comparison of Rankine cycles with different working fluids for waste heat recovery of internal combustion engines., Energy Procedia, 105, p. 1600, DOI: 10.1016/j.egypro.2017.03.512</label>
          <listPosition>261</listPosition>
          <doi>10.1016/j.egypro.2017.03.512</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181841</mtid>
          <link>/api/reference/61181841</link>
          <label>262. Pili 2022: Multi-objective optimization of organic Rankine cycle systems considering their dynamic performance., Energy, 246, DOI: 10.1016/j.energy.2022.123345</label>
          <listPosition>262</listPosition>
          <doi>10.1016/j.energy.2022.123345</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181842</mtid>
          <link>/api/reference/61181842</link>
          <label>263. Peng 2020: Off-design performance comparison of single-stage axial turbines using CO2 and zeotropic mixture for low-temperature heat source., Energy Convers Manage, 213, DOI: 10.1016/j.enconman.2020.112838</label>
          <listPosition>263</listPosition>
          <doi>10.1016/j.enconman.2020.112838</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181843</mtid>
          <link>/api/reference/61181843</link>
          <label>264. Tian 2017: Thermo-economic analysis of zeotropic mixtures based on siloxanes for engine waste heat recovery using a dual-loop organic Rankine cycle (DORC)., Energy Convers Manage, 136, p. 11, DOI: 10.1016/j.enconman.2016.12.066</label>
          <listPosition>264</listPosition>
          <doi>10.1016/j.enconman.2016.12.066</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181844</mtid>
          <link>/api/reference/61181844</link>
          <label>265. Zarogiannis 2017: The impact of novel and conventional working fluids on the control performance in organic Rankine cycles., Comput Aided Chem Eng, 40, DOI: 10.1016/B978-0-444-63965-3.50409-8</label>
          <listPosition>265</listPosition>
          <doi>10.1016/B978-0-444-63965-3.50409-8</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181845</mtid>
          <link>/api/reference/61181845</link>
          <label>266. Zarogiannis 2017: Control studies of organic Rankine cycles with different working fluid mixtures., Chem Eng Trans, 61</label>
          <listPosition>266</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181846</mtid>
          <link>/api/reference/61181846</link>
          <label>267. Zarogiannis 2019: Systematic selection of working fluid mixtures for optimum solvent-based CO2 capture processes and organic rankine cycles</label>
          <listPosition>267</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181847</mtid>
          <link>/api/reference/61181847</link>
          <label>268. Chen 2020: Dynamic behavior of supercritical organic Rankine cycle using zeotropic mixture working fluids., Energy, 191, DOI: 10.1016/j.energy.2019.116576</label>
          <listPosition>268</listPosition>
          <doi>10.1016/j.energy.2019.116576</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181848</mtid>
          <link>/api/reference/61181848</link>
          <label>269. Cai 2020: Validation and analysis of organic Rankine cycle dynamic model using zeotropic mixture., Energy, 197, DOI: 10.1016/j.energy.2020.117003</label>
          <listPosition>269</listPosition>
          <doi>10.1016/j.energy.2020.117003</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181849</mtid>
          <link>/api/reference/61181849</link>
          <label>270. Gad-el Hak 2017: 3D numerical modeling of zeotropic mixtures and pure working fluids in an ORC turbo-expander., Int J Turbomach Propul Power, 2, p. 2</label>
          <listPosition>270</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181850</mtid>
          <link>/api/reference/61181850</link>
          <label>271. Wang 2019: Preliminary design and numerical analysis of a radial inflow turbine in organic Rankine cycle using zeotropic mixtures., Appl Therm Eng, 162, DOI: 10.1016/j.applthermaleng.2019.114266</label>
          <listPosition>271</listPosition>
          <doi>10.1016/j.applthermaleng.2019.114266</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181851</mtid>
          <link>/api/reference/61181851</link>
          <label>272. Le 2014: Thermodynamic and economic optimizations of a waste heat to power plant driven by a subcritical ORC (organic Rankine cycle) using pure or zeotropic working fluid., Energy, 78, p. 622, DOI: 10.1016/j.energy.2014.10.051</label>
          <listPosition>272</listPosition>
          <doi>10.1016/j.energy.2014.10.051</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181852</mtid>
          <link>/api/reference/61181852</link>
          <label>273. Lampe 2019: Toward the integrated design of organic Rankine cycle power plants: A method for the simultaneous optimization of working fluid, thermodynamic cycle, and turbine., J Eng Gas Turbines Power-Trans Asme, 141, DOI: 10.1115/1.4044380</label>
          <listPosition>273</listPosition>
          <doi>10.1115/1.4044380</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181853</mtid>
          <link>/api/reference/61181853</link>
          <label>274. Schilling 2017: From molecules to dollars: integrating molecular design into thermo-economic process design using consistent thermodynamic modeling., Mol Syst Des Eng, 2, p. 301, DOI: 10.1039/C7ME00026J</label>
          <listPosition>274</listPosition>
          <doi>10.1039/C7ME00026J</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181854</mtid>
          <link>/api/reference/61181854</link>
          <label>275. van Kleef 2019: Multi-objective thermo-economic optimization of organic Rankine cycle (ORC) power systems in waste-heat recovery applications using computer-aided molecular design techniques., Appl Energy, 251, DOI: 10.1016/j.apenergy.2019.01.071</label>
          <listPosition>275</listPosition>
          <doi>10.1016/j.apenergy.2019.01.071</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181855</mtid>
          <link>/api/reference/61181855</link>
          <label>276. Tillmanns 2019: ORC on tour: Integrated design of dynamic ORC processes and working fluids for waste-heat recovery from heavy-duty vehicles.29th European symposium on computer aided process engineering, pt a, Vol. 46, p. 163</label>
          <listPosition>276</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181856</mtid>
          <link>/api/reference/61181856</link>
          <label>277. Schilling 2021: Towards optimal mixtures of working fluids: Integrated design of processes and mixtures for organic Rankine cycles., Renew Sustain Energy Rev, 135, DOI: 10.1016/j.rser.2020.110179</label>
          <listPosition>277</listPosition>
          <doi>10.1016/j.rser.2020.110179</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181857</mtid>
          <link>/api/reference/61181857</link>
          <label>278. Thierry 2016: Simultaneous optimal design of multi-stage organic Rankine cycles and working fluid mixtures for low-temperature heat sources., Comput Chem Eng, 89, p. 106, DOI: 10.1016/j.compchemeng.2016.03.005</label>
          <listPosition>278</listPosition>
          <doi>10.1016/j.compchemeng.2016.03.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181858</mtid>
          <link>/api/reference/61181858</link>
          <label>279. Song 2016: Influence of the radial-inflow turbine efficiency prediction on the design and analysis of the organic Rankine cycle (ORC) system., Energy Convers Manage, 123, DOI: 10.1016/j.enconman.2016.06.037</label>
          <listPosition>279</listPosition>
          <doi>10.1016/j.enconman.2016.06.037</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181859</mtid>
          <link>/api/reference/61181859</link>
          <label>280. Bahadormanesh 2017: Constrained multi-objective optimization of radial expanders in organic Rankine cycles by firefly algorithm., Energy Convers Manage, 148, p. 1179, DOI: 10.1016/j.enconman.2017.06.070</label>
          <listPosition>280</listPosition>
          <doi>10.1016/j.enconman.2017.06.070</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181860</mtid>
          <link>/api/reference/61181860</link>
          <label>281. Li 2019: Organic Rankine cycle systems for engine waste-heat recovery: Heat exchanger design in space-constrained applications., Energy Convers Manage, 199, DOI: 10.1016/j.enconman.2019.111968</label>
          <listPosition>281</listPosition>
          <doi>10.1016/j.enconman.2019.111968</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181861</mtid>
          <link>/api/reference/61181861</link>
          <label>282. Zhao 2019: Expansion devices for organic Rankine cycle (ORC) using in low temperature heat recovery: A review., Energy Convers Manage, 199, DOI: 10.1016/j.enconman.2019.111944</label>
          <listPosition>282</listPosition>
          <doi>10.1016/j.enconman.2019.111944</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181862</mtid>
          <link>/api/reference/61181862</link>
          <label>283. Yue 2015: Thermal matching performance of a geothermal ORC system using zeotropic working fluids., Renew Energy, 80, p. 746, DOI: 10.1016/j.renene.2015.02.063</label>
          <listPosition>283</listPosition>
          <doi>10.1016/j.renene.2015.02.063</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181863</mtid>
          <link>/api/reference/61181863</link>
          <label>284. Palagi 2019: A neural network approach to the combined multi-objective optimization of the thermodynamic cycle and the radial inflow turbine for organic Rankine cycle applications., Appl Energy, 237, DOI: 10.1016/j.apenergy.2019.01.035</label>
          <listPosition>284</listPosition>
          <doi>10.1016/j.apenergy.2019.01.035</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181864</mtid>
          <link>/api/reference/61181864</link>
          <label>285. Pantaleo 2019: Thermoeconomic optimisation of small-scale organic Rankine cycle systems based on screw vs. piston expander maps in waste heat recovery applications., Energy Convers Manage, 200, DOI: 10.1016/j.enconman.2019.112053</label>
          <listPosition>285</listPosition>
          <doi>10.1016/j.enconman.2019.112053</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181865</mtid>
          <link>/api/reference/61181865</link>
          <label>286. Kim 2019: Experiment on radial inflow turbines and performance prediction using deep neural network for the organic Rankine cycle., Appl Therm Eng, 149, p. 633, DOI: 10.1016/j.applthermaleng.2018.12.084</label>
          <listPosition>286</listPosition>
          <doi>10.1016/j.applthermaleng.2018.12.084</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181866</mtid>
          <link>/api/reference/61181866</link>
          <label>287. Madhawa Hettiarachchi 2007: Optimum design criteria for an organic Rankine cycle using low-temperature geothermal heat sources., Energy, 32, p. 1698, DOI: 10.1016/j.energy.2007.01.005</label>
          <listPosition>287</listPosition>
          <doi>10.1016/j.energy.2007.01.005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181867</mtid>
          <link>/api/reference/61181867</link>
          <label>288. Desideri 2016: Comparison of moving boundary and finite-volume heat exchanger models in the Modelica language., Energies, 9, p. 339, DOI: 10.3390/en9050339</label>
          <listPosition>288</listPosition>
          <doi>10.3390/en9050339</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181868</mtid>
          <link>/api/reference/61181868</link>
          <label>289. Xu 2017: Transient dynamic modeling and validation of an organic Rankine cycle waste heat recovery system for heavy duty diesel engine applications., Appl Energy, 205, p. 260, DOI: 10.1016/j.apenergy.2017.07.038</label>
          <listPosition>289</listPosition>
          <doi>10.1016/j.apenergy.2017.07.038</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181869</mtid>
          <link>/api/reference/61181869</link>
          <label>290. Pereira 2012: The HELD algorithm for multicomponent, multiphase equilibrium calculations with generic equations of state., Comput Chem Eng, 36, p. 99, DOI: 10.1016/j.compchemeng.2011.07.009</label>
          <listPosition>290</listPosition>
          <doi>10.1016/j.compchemeng.2011.07.009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181870</mtid>
          <link>/api/reference/61181870</link>
          <label>291. Mitsos 2007: A dual extremum principle in thermodynamics., AIChE J, 53, p. 2131, DOI: 10.1002/aic.11230</label>
          <listPosition>291</listPosition>
          <doi>10.1002/aic.11230</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181871</mtid>
          <link>/api/reference/61181871</link>
          <label>292. Mastrullo 2015: Modeling and optimization of a shell and louvered fin mini-tubes heat exchanger in an ORC powered by an internal combustion engine., Energy Convers Manage, 101, p. 697, DOI: 10.1016/j.enconman.2015.06.012</label>
          <listPosition>292</listPosition>
          <doi>10.1016/j.enconman.2015.06.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181872</mtid>
          <link>/api/reference/61181872</link>
          <label>293. Yang 2015: Numerical investigation on a novel shell-and-tube heat exchanger with plate baffles and experimental validation., Energy Convers Manage, 101, p. 689, DOI: 10.1016/j.enconman.2015.05.066</label>
          <listPosition>293</listPosition>
          <doi>10.1016/j.enconman.2015.05.066</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181873</mtid>
          <link>/api/reference/61181873</link>
          <label>294. Mokkapati 2014: Numerical study of an exhaust heat recovery system using corrugated tube heat exchanger with twisted tape inserts., Int Commun Heat Mass Transfer, 57, p. 53, DOI: 10.1016/j.icheatmasstransfer.2014.07.002</label>
          <listPosition>294</listPosition>
          <doi>10.1016/j.icheatmasstransfer.2014.07.002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181874</mtid>
          <link>/api/reference/61181874</link>
          <label>295. Chen 2019: Compact potential of exhaust heat exchangers for engine waste heat recovery using metal foams., Int J Energy Res, 43, p. 1428, DOI: 10.1002/er.4340</label>
          <listPosition>295</listPosition>
          <doi>10.1002/er.4340</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181875</mtid>
          <link>/api/reference/61181875</link>
          <label>296. Zhang 2023: A comparative study on design and performance evaluation of organic rankine cycle (ORC) under different two-phase heat transfer correlations., Appl Energy, 350, DOI: 10.1016/j.apenergy.2023.121724</label>
          <listPosition>296</listPosition>
          <doi>10.1016/j.apenergy.2023.121724</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181876</mtid>
          <link>/api/reference/61181876</link>
          <label>297. Calise 2018: A comparison of heat transfer correlations applied to an organic rankine cycle., Eng Sci Technol, Int J, 21, p. 1164</label>
          <listPosition>297</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181877</mtid>
          <link>/api/reference/61181877</link>
          <label>298. Heberle 2016: Thermo-economic analysis of zeotropic mixtures and pure working fluids in organic Rankine cycles for waste heat recovery., Energies, 9, p. 226, DOI: 10.3390/en9040226</label>
          <listPosition>298</listPosition>
          <doi>10.3390/en9040226</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181878</mtid>
          <link>/api/reference/61181878</link>
          <label>299. Gkouletsos 2019: Systematic modeling under uncertainty of single, double and triple effect absorption refrigeration processes., Energy, 183, p. 262, DOI: 10.1016/j.energy.2019.06.067</label>
          <listPosition>299</listPosition>
          <doi>10.1016/j.energy.2019.06.067</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181879</mtid>
          <link>/api/reference/61181879</link>
          <label>300. Frutiger 2016: Working fluid selection for organic Rankine cycles – Impact of uncertainty of fluid properties., Energy, 109, p. 987, DOI: 10.1016/j.energy.2016.05.010</label>
          <listPosition>300</listPosition>
          <doi>10.1016/j.energy.2016.05.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181880</mtid>
          <link>/api/reference/61181880</link>
          <label>301. Frutiger 2017: Property uncertainty analysis and methods for optimal working fluids of thermodynamic cycles</label>
          <listPosition>301</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181881</mtid>
          <link>/api/reference/61181881</link>
          <label>302. Soave 1972: Equilibrium constants from a modified Redlich-Kwong equation of state., Chem Eng Sci, 27, p. 1197, DOI: 10.1016/0009-2509(72)80096-4</label>
          <listPosition>302</listPosition>
          <doi>10.1016/0009-2509(72)80096-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181882</mtid>
          <link>/api/reference/61181882</link>
          <label>303. Gross 2000: Application of perturbation theory to a hard-chain reference fluid: an equation of state for square-well chains., Fluid Phase Equilib, 168, p. 183, DOI: 10.1016/S0378-3812(00)00302-2</label>
          <listPosition>303</listPosition>
          <doi>10.1016/S0378-3812(00)00302-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181883</mtid>
          <link>/api/reference/61181883</link>
          <label>304. Frutiger 2017: Uncertainty assessment of equations of state with application to an organic Rankine cyclep. 1225</label>
          <listPosition>304</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181884</mtid>
          <link>/api/reference/61181884</link>
          <label>305. Aly 1981: Self-consistent equations for calculating the ideal gas heat capacity, enthalpy, and entropy., Fluid Phase Equilib, 6</label>
          <listPosition>305</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181885</mtid>
          <link>/api/reference/61181885</link>
          <label>306. Frutiger 2016: Global sensitivity analysis of computer-aided molecular design problem for the development of novel working fluids for power cycles.Computer aided chemical engineering, vol. 38, p. 283, DOI: 10.1016/B978-0-444-63428-3.50052-7</label>
          <listPosition>306</listPosition>
          <doi>10.1016/B978-0-444-63428-3.50052-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181886</mtid>
          <link>/api/reference/61181886</link>
          <label>307. Peng 1976: A new two-constant equation of state., Ind Eng Chem Fundam, 15, p. 59, DOI: 10.1021/i160057a011</label>
          <listPosition>307</listPosition>
          <doi>10.1021/i160057a011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181887</mtid>
          <link>/api/reference/61181887</link>
          <label>308. Santos-Rodriguez MM, Flores-Tlacuahuac A, Zavala VM. A stochastic optimization approach for the design of organic fluid mixtures for low-temperature heat recovery, Appl Energy 198. http://dx.doi.org/10.1016/J.APENERGY.2017.04.047., DOI: 10.1016/j.apenergy.2017.04.047</label>
          <listPosition>308</listPosition>
          <doi>10.1016/j.apenergy.2017.04.047</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181888</mtid>
          <link>/api/reference/61181888</link>
          <label>309. Dige 2018: Efficient sampling algorithm for large-scale optimization under uncertainty problems., Comput Chem Eng, 115, p. 431, DOI: 10.1016/j.compchemeng.2018.05.007</label>
          <listPosition>309</listPosition>
          <doi>10.1016/j.compchemeng.2018.05.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181889</mtid>
          <link>/api/reference/61181889</link>
          <label>310. Zarogiannis 2022: Simultaneous process design and control in integrated energy conversion systems – Application to organic Rankine cycles.Handbook of process integration, p. 765</label>
          <listPosition>310</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181890</mtid>
          <link>/api/reference/61181890</link>
          <label>311. Lu 2021: Thermo-economic design, optimization, and evaluation of a novel zeotropic ORC with mixture composition adjustment during operation., Energy Convers Manage, 230, DOI: 10.1016/j.enconman.2020.113771</label>
          <listPosition>311</listPosition>
          <doi>10.1016/j.enconman.2020.113771</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181891</mtid>
          <link>/api/reference/61181891</link>
          <label>312. Mavrou 2015: Selection of working fluid mixtures for flexible organic Rankine cycles under operating variability through a systematic nonlinear sensitivity analysis approach., Appl Therm Eng, 89, p. 1054, DOI: 10.1016/j.applthermaleng.2015.06.017</label>
          <listPosition>312</listPosition>
          <doi>10.1016/j.applthermaleng.2015.06.017</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181892</mtid>
          <link>/api/reference/61181892</link>
          <label>313. Mavrou 2015: Systematic nonlinear sensitivity analysis of working fluid mixtures for flexible solar Rankine cycles., Chem Eng Trans, 45</label>
          <listPosition>313</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181893</mtid>
          <link>/api/reference/61181893</link>
          <label>314. Mavrou 2015: Novel and conventional working fluid mixtures for solar Rankine cycles: Performance assessment and multi-criteria selection., Appl Therm Eng, 75, p. 384, DOI: 10.1016/j.applthermaleng.2014.10.077</label>
          <listPosition>314</listPosition>
          <doi>10.1016/j.applthermaleng.2014.10.077</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181894</mtid>
          <link>/api/reference/61181894</link>
          <label>315. Mavrou 2014: Assessment of working fluid mixtures for solar organic Rankine cycles.PRES 2014, 17th conference on process integration, modelling and optimisation for energy saving and pollution reduction, pts 1–3, 39, p. 283</label>
          <listPosition>315</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181895</mtid>
          <link>/api/reference/61181895</link>
          <label>316. Chatzopoulou 2019: Off-design optimisation of organic Rankine cycle (ORC) engines with different heat exchangers and volumetric expanders in waste heat recovery applications., Appl Energy, 253, DOI: 10.1016/j.apenergy.2019.113442</label>
          <listPosition>316</listPosition>
          <doi>10.1016/j.apenergy.2019.113442</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181896</mtid>
          <link>/api/reference/61181896</link>
          <label>317. Pang 2020: Developing ORC engineering simulator (ORCES) to investigate the working fluid mass flow rate control strategy and simulate long-time operation., Energy Convers Manage, 203, DOI: 10.1016/j.enconman.2019.112206</label>
          <listPosition>317</listPosition>
          <doi>10.1016/j.enconman.2019.112206</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181897</mtid>
          <link>/api/reference/61181897</link>
          <label>318. Span 2013: Multiparameter equations of state: an accurate source of thermodynamic property data</label>
          <listPosition>318</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181898</mtid>
          <link>/api/reference/61181898</link>
          <label>319. Vogel 1998: Reference correlation of the viscosity of propane., J Phys Chem Ref Data, 27, p. 947, DOI: 10.1063/1.556025</label>
          <listPosition>319</listPosition>
          <doi>10.1063/1.556025</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181899</mtid>
          <link>/api/reference/61181899</link>
          <label>320. Kunz 2012: The GERG-2008 wide-range equation of state for natural gases and other mixtures: an expansion of GERG-2004., J Chem Eng Data, 57, p. 3032, DOI: 10.1021/je300655b</label>
          <listPosition>320</listPosition>
          <doi>10.1021/je300655b</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181900</mtid>
          <link>/api/reference/61181900</link>
          <label>321. Poling 2001: The properties of gases and liquids</label>
          <listPosition>321</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181901</mtid>
          <link>/api/reference/61181901</link>
          <label>322. Elliott 2023: The properties of gases and liquids</label>
          <listPosition>322</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181902</mtid>
          <link>/api/reference/61181902</link>
          <label>323. Gani 2019: Group contribution-based property estimation methods:advances and perspectives., Curr Opin Chem Eng, 23, p. 184, DOI: 10.1016/j.coche.2019.04.007</label>
          <listPosition>323</listPosition>
          <doi>10.1016/j.coche.2019.04.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181903</mtid>
          <link>/api/reference/61181903</link>
          <label>324. Lydersen 1955: Estimation of critical properties of organic compounds., University of Wisconsin College Engineering, Eng. Exp. Stn. Rep. 3, Madison, WI</label>
          <listPosition>324</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181904</mtid>
          <link>/api/reference/61181904</link>
          <label>325. Joback 1984: A unified approach to physical property estimation using multivariate statistical techniques</label>
          <listPosition>325</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181905</mtid>
          <link>/api/reference/61181905</link>
          <label>326. 2000: ASPEN PLUS: user guide</label>
          <listPosition>326</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181906</mtid>
          <link>/api/reference/61181906</link>
          <label>327. Process Systems Enterprise 1997: gPROMS</label>
          <listPosition>327</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181907</mtid>
          <link>/api/reference/61181907</link>
          <label>328. Riedel 1954: Kritischer Koeffizient, Dichte des gesättigten Dampfes und Verdampfungswärme. Untersuchungen über eine Erweiterung des Theorems der übereinstimmenden Zustände. Teil III., Chem Ing Tech, 26, p. 679, DOI: 10.1002/cite.330261208</label>
          <listPosition>328</listPosition>
          <doi>10.1002/cite.330261208</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181908</mtid>
          <link>/api/reference/61181908</link>
          <label>329. Palma-Flores 2016: Simultaneous molecular and process design for waste heat recovery., Energy, 99, p. 32, DOI: 10.1016/j.energy.2016.01.024</label>
          <listPosition>329</listPosition>
          <doi>10.1016/j.energy.2016.01.024</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181909</mtid>
          <link>/api/reference/61181909</link>
          <label>330. Lukawski 2018: Molecular property methods for assessing efficiency of organic Rankine cycles., Energy, 142, p. 108, DOI: 10.1016/j.energy.2017.09.140</label>
          <listPosition>330</listPosition>
          <doi>10.1016/j.energy.2017.09.140</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181910</mtid>
          <link>/api/reference/61181910</link>
          <label>331. Constantinou 1994: New group contribution method for estimating the properties of pure compounds., AIChE J, 40, p. 1697, DOI: 10.1002/aic.690401011</label>
          <listPosition>331</listPosition>
          <doi>10.1002/aic.690401011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181911</mtid>
          <link>/api/reference/61181911</link>
          <label>332. Marrero-Morejón 1999: Estimation of pure compound properties using group-interaction contributions., AIChE J, 45, p. 615, DOI: 10.1002/aic.690450318</label>
          <listPosition>332</listPosition>
          <doi>10.1002/aic.690450318</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181912</mtid>
          <link>/api/reference/61181912</link>
          <label>333. Fanxiao 2021: Possibility of optimal efficiency prediction of an organic Rankine cycle based on molecular property method for high-temperature exhaust gases., Energy, 222, DOI: 10.1016/j.energy.2021.119974</label>
          <listPosition>333</listPosition>
          <doi>10.1016/j.energy.2021.119974</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181913</mtid>
          <link>/api/reference/61181913</link>
          <label>334. Papadopoulos 2010: Power generation from low enthalpy geothermal fields by design and selection of efficient working fluids for organic Rankine cycles.PRES 2010: 13th international conference on process integration, modelling and optimisation for energy saving and pollution reduction, 21, p. 61</label>
          <listPosition>334</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181914</mtid>
          <link>/api/reference/61181914</link>
          <label>335. Papadopoulos 2012: Multi-level design and selection of optimum working fluids and ORC systems for power and heat cogeneration from low enthalpy renewable sources.22nd European symposium on computer aided process engineering, 30, p. 66</label>
          <listPosition>335</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181915</mtid>
          <link>/api/reference/61181915</link>
          <label>336. Papadopoulos 2013: Molecular design of working fluid mixtures for organic Rankine cycles.23rd European symposium on computer aided process engineering, Vol. 32, p. 289</label>
          <listPosition>336</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181916</mtid>
          <link>/api/reference/61181916</link>
          <label>337. Linke 2015: Systematic methods for working fluid selection and the design, integration and control of organic Rankine cycles-a review., Energies, 8, p. 4755, DOI: 10.3390/en8064755</label>
          <listPosition>337</listPosition>
          <doi>10.3390/en8064755</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181917</mtid>
          <link>/api/reference/61181917</link>
          <label>338. Su 2017: Group contribution methods in thermodynamic cycles: Physical properties estimation of pure working fluids., Renew Sustain Energy Rev, 79, p. 984, DOI: 10.1016/j.rser.2017.05.164</label>
          <listPosition>338</listPosition>
          <doi>10.1016/j.rser.2017.05.164</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181918</mtid>
          <link>/api/reference/61181918</link>
          <label>339. Walker 2020: A new predictive group-contribution ideal-heat-capacity model and its influence on second-derivative properties calculated using a free-energy equation of state., J Chem Eng Data, 65, p. 5809, DOI: 10.1021/acs.jced.0c00723</label>
          <listPosition>339</listPosition>
          <doi>10.1021/acs.jced.0c00723</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181919</mtid>
          <link>/api/reference/61181919</link>
          <label>340. Fredenslund 1977: Vapor-liquid equilibria using UNIFAC: A Group-Contribution method</label>
          <listPosition>340</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181920</mtid>
          <link>/api/reference/61181920</link>
          <label>341. Weidlich 1987: A modified UNIFAC model. 1. prediction of VLE, hE and γ∞., Ind Eng Chem Res, 26, p. 1372, DOI: 10.1021/ie00067a018</label>
          <listPosition>341</listPosition>
          <doi>10.1021/ie00067a018</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181921</mtid>
          <link>/api/reference/61181921</link>
          <label>342. Wilson 1964: J Am Chem Soc, 86, p. 127, DOI: 10.1021/ja01056a002</label>
          <listPosition>342</listPosition>
          <doi>10.1021/ja01056a002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181922</mtid>
          <link>/api/reference/61181922</link>
          <label>343. Renon 1968: Local compositions in thermodynamic excess functions for liquid mixtures., AIChE J, 14, p. 135, DOI: 10.1002/aic.690140124</label>
          <listPosition>343</listPosition>
          <doi>10.1002/aic.690140124</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181923</mtid>
          <link>/api/reference/61181923</link>
          <label>344. Abrams DS, Prausnitz JM. Statistical thermodynamics of liquid mixtures: A new expression for the excess gibbs energy of partly or completely miscible systems, AIChE J. 21, 116–128. http://dx.doi.org/10.1002/aic.690210115., DOI: 10.1002/aic.690210115</label>
          <listPosition>344</listPosition>
          <doi>10.1002/aic.690210115</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181924</mtid>
          <link>/api/reference/61181924</link>
          <label>345. Maurer G, Prausnitz JM. On the derivation and extension of the uniquac equation, Fluid Phase Equilib. 2, 91–99. http://dx.doi.org/10.1016/0378-3812(78)85002-x., DOI: 10.1016/0378-3812(78)85002-X</label>
          <listPosition>345</listPosition>
          <doi>10.1016/0378-3812(78)85002-X</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181925</mtid>
          <link>/api/reference/61181925</link>
          <label>346. Derr 1969: Analytical solutions of groups: correlation of activity coefficients through structural group parameters., Int Chem Eng Symp Ser No. 32, 3, p. 44</label>
          <listPosition>346</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181926</mtid>
          <link>/api/reference/61181926</link>
          <label>347. Kontogeorgis 2010: Thermodynamic models for industrial applications. From classical and advanced mixing rules to association theories</label>
          <listPosition>347</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181927</mtid>
          <link>/api/reference/61181927</link>
          <label>348. Madani 2013: Isothermal vapor-liquid equilibrium data for the decafluorobutane (R3110)+1,1,1,3,3-pentafluorobutane (R365mfc) system at temperatures from 333 K to 441 K., Fluid Phase Equilib, 354, p. 109, DOI: 10.1016/j.fluid.2013.06.031</label>
          <listPosition>348</listPosition>
          <doi>10.1016/j.fluid.2013.06.031</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181928</mtid>
          <link>/api/reference/61181928</link>
          <label>349. Privat 2013: Quest for an efficient binary working mixture for an absorption-demixing heat transformer., Energy, 55, p. 594, DOI: 10.1016/j.energy.2013.03.081</label>
          <listPosition>349</listPosition>
          <doi>10.1016/j.energy.2013.03.081</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181929</mtid>
          <link>/api/reference/61181929</link>
          <label>350. Zhang 2014: Measurement and Correlation of Isothermal Vapor-Liquid Equilibrium of 1,1,1,3,3-Pentafluoropropane plus N,N-Dimethylacetamide and 1,1,1,3,3,3-Hexafluoropropane plus N,N-Dimethylacetamide/Diethylene Glycol Dimethyl Ether Systems., J Chem Eng Data, 59, p. 3912, DOI: 10.1021/je500801w</label>
          <listPosition>350</listPosition>
          <doi>10.1021/je500801w</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181930</mtid>
          <link>/api/reference/61181930</link>
          <label>351. Li 2014: Vapor-liquid equilibrium measurement of 1,1,1,3,3-pentafluoropropane plus N,N-dimethylformamide/diethylene glycol dimethyl ether/N-methyl-2-pyrrolidone working fluids for absorption power cycle., Fluid Phase Equilib, 366, p. 1, DOI: 10.1016/j.fluid.2014.01.007</label>
          <listPosition>351</listPosition>
          <doi>10.1016/j.fluid.2014.01.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181931</mtid>
          <link>/api/reference/61181931</link>
          <label>352. Panesar 2016: An innovative organic Rankine cycle approach for high temperature applications., Energy, 115, p. 1436, DOI: 10.1016/j.energy.2016.05.135</label>
          <listPosition>352</listPosition>
          <doi>10.1016/j.energy.2016.05.135</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181932</mtid>
          <link>/api/reference/61181932</link>
          <label>353. Jirasek 2023: Prediction of parameters of group contribution models of mixtures by matrix completion., Phys Chem Chem Phys, 25, p. 1054, DOI: 10.1039/D2CP04478A</label>
          <listPosition>353</listPosition>
          <doi>10.1039/D2CP04478A</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181933</mtid>
          <link>/api/reference/61181933</link>
          <label>354. Klamt 1995: Conductor-like Screening Model for Real Solvents: A new approach to the quantitative calculation of solvation phenomena., J Phys Chem, 99, p. 2224, DOI: 10.1021/j100007a062</label>
          <listPosition>354</listPosition>
          <doi>10.1021/j100007a062</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181934</mtid>
          <link>/api/reference/61181934</link>
          <label>355. Klamt 1998: Refinement and parameterization of COSMO-RS., J Phys Chem A, 102, p. 5074, DOI: 10.1021/jp980017s</label>
          <listPosition>355</listPosition>
          <doi>10.1021/jp980017s</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181935</mtid>
          <link>/api/reference/61181935</link>
          <label>356. Klamt 2000: COSMO-RS: a novel and efficient method for the a priori prediction of thermophysical data of liquids., Fluid Phase Equilib, 172, p. 43, DOI: 10.1016/S0378-3812(00)00357-5</label>
          <listPosition>356</listPosition>
          <doi>10.1016/S0378-3812(00)00357-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181936</mtid>
          <link>/api/reference/61181936</link>
          <label>357. Preißinger 2016: High-throughput screening of ORC fluids for mobile applications.Energy and thermal management, air conditioning, waste heat recovery: 1st ETA conference, December 1-2, 2016, berlin, Germany 1, p. 35</label>
          <listPosition>357</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181937</mtid>
          <link>/api/reference/61181937</link>
          <label>358. Scheffczyk 2017: COSMO-CAMD: A framework for optimization-based computer-aided molecular design using COSMO-RS., Chem Eng Sci, 159, p. 84, DOI: 10.1016/j.ces.2016.05.038</label>
          <listPosition>358</listPosition>
          <doi>10.1016/j.ces.2016.05.038</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181938</mtid>
          <link>/api/reference/61181938</link>
          <label>359. Lin 2002: A priori phase equilibrium prediction from a segment contribution solvation model., Ind Eng Chem Res, 41, p. 899, DOI: 10.1021/ie001047w</label>
          <listPosition>359</listPosition>
          <doi>10.1021/ie001047w</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181939</mtid>
          <link>/api/reference/61181939</link>
          <label>360. Xu 2021: Power generation from waste heat: Ionic liquid-based absorption cycle versus organic Rankine cycle., AIChE J, 67, DOI: 10.1002/aic.17038</label>
          <listPosition>360</listPosition>
          <doi>10.1002/aic.17038</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181940</mtid>
          <link>/api/reference/61181940</link>
          <label>361. https://github.com/usnistgov/COSMOSAC, 2020.</label>
          <listPosition>361</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181941</mtid>
          <link>/api/reference/61181941</link>
          <label>362. Hsieh 2010: Improvements of COSMO-SAC for vapor-liquid and liquid-liquid equilibrium predictions., Fluid Phase Equilib, 297, p. 90, DOI: 10.1016/j.fluid.2010.06.011</label>
          <listPosition>362</listPosition>
          <doi>10.1016/j.fluid.2010.06.011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181942</mtid>
          <link>/api/reference/61181942</link>
          <label>363. Hsieh 2014: Considering the dispersive interactions in the COSMO-SAC model for more accurate predictions of fluid phase behavior., Fluid Phase Equilib, 367, p. 109, DOI: 10.1016/j.fluid.2014.01.032</label>
          <listPosition>363</listPosition>
          <doi>10.1016/j.fluid.2014.01.032</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181943</mtid>
          <link>/api/reference/61181943</link>
          <label>364. Bell 2020: A Benchmark Open-Source Implementation of COSMO-SAC., J Chem Theory Comput, 16, p. 2635, DOI: 10.1021/acs.jctc.9b01016</label>
          <listPosition>364</listPosition>
          <doi>10.1021/acs.jctc.9b01016</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181944</mtid>
          <link>/api/reference/61181944</link>
          <label>365. Winter 2022: A smile is all you need: predicting limiting activity coefficients from SMILES with natural language processing., Digit Discov, 1, p. 859, DOI: 10.1039/D2DD00058J</label>
          <listPosition>365</listPosition>
          <doi>10.1039/D2DD00058J</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181945</mtid>
          <link>/api/reference/61181945</link>
          <label>366. Winter 2023: SPT-NRTL: A physics-guided machine learning model to predict thermodynamically consistent activity coefficients., Fluid Phase Equilib, 568, DOI: 10.1016/j.fluid.2023.113731</label>
          <listPosition>366</listPosition>
          <doi>10.1016/j.fluid.2023.113731</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181946</mtid>
          <link>/api/reference/61181946</link>
          <label>367. Weininger 1988: SMILES, a chemical language and information system. 1. Introduction to methodology and encoding rules., J Chem Inf Comput Sci, 28, p. 31, DOI: 10.1021/ci00057a005</label>
          <listPosition>367</listPosition>
          <doi>10.1021/ci00057a005</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181947</mtid>
          <link>/api/reference/61181947</link>
          <label>368. Weininger 1989: SMILES. 2. Algorithm for generation of unique SMILES notation., J Chem Inf Model, 29, p. 97</label>
          <listPosition>368</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181948</mtid>
          <link>/api/reference/61181948</link>
          <label>369. Weininger 1990: SMILES. 3. DEPICT. Graphical depiction of chemical structures., J Chem Inf Model, 30, p. 237</label>
          <listPosition>369</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181949</mtid>
          <link>/api/reference/61181949</link>
          <label>370. Holderbaum 1991: PSRK: A group contribution equation of state based on UNIFAC., Fluid Phase Equilib, 70, p. 251, DOI: 10.1016/0378-3812(91)85038-V</label>
          <listPosition>370</listPosition>
          <doi>10.1016/0378-3812(91)85038-V</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181950</mtid>
          <link>/api/reference/61181950</link>
          <label>371. Patel 1982: A new cubic equation of state for fluids and fluid mixtures., Chem Eng Sci, 37, p. 463, DOI: 10.1016/0009-2509(82)80099-7</label>
          <listPosition>371</listPosition>
          <doi>10.1016/0009-2509(82)80099-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181951</mtid>
          <link>/api/reference/61181951</link>
          <label>372. Rehner 2023: FeOs - an open-source framework for equations of state and classical density functional theory., Ind Eng Chem Res, 62, p. 5347, DOI: 10.1021/acs.iecr.2c04561</label>
          <listPosition>372</listPosition>
          <doi>10.1021/acs.iecr.2c04561</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181952</mtid>
          <link>/api/reference/61181952</link>
          <label>373. Bell 2022: Implementing an equation of state without derivatives: teqp., Ind Eng Chem Res, 61, p. 6010, DOI: 10.1021/acs.iecr.2c00237</label>
          <listPosition>373</listPosition>
          <doi>10.1021/acs.iecr.2c00237</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181953</mtid>
          <link>/api/reference/61181953</link>
          <label>374. Chaparro 2020: Phasepy: A Python based framework for fluid phase equilibria and interfacial properties computation., J Comput Chem, 41, p. 2504, DOI: 10.1002/jcc.26405</label>
          <listPosition>374</listPosition>
          <doi>10.1002/jcc.26405</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181954</mtid>
          <link>/api/reference/61181954</link>
          <label>375. Yew 2022: Clapeyron.jl</label>
          <listPosition>375</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181955</mtid>
          <link>/api/reference/61181955</link>
          <label>376. Walker 2022: Clapeyron.jl: An extensible, open-source thermodynamics toolkit., Ind Eng Chem Res, 61, p. 7130, DOI: 10.1021/acs.iecr.2c00326</label>
          <listPosition>376</listPosition>
          <doi>10.1021/acs.iecr.2c00326</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181956</mtid>
          <link>/api/reference/61181956</link>
          <label>377. Huron 1979: New mixing rules in simple equations of state for representing vapour-liquid equilibria of strongly non-ideal mixtures., Fluid Phase Equilib, 3, p. 255, DOI: 10.1016/0378-3812(79)80001-1</label>
          <listPosition>377</listPosition>
          <doi>10.1016/0378-3812(79)80001-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181957</mtid>
          <link>/api/reference/61181957</link>
          <label>378. Michelsen 1990: A modified Huron-Vidal mixing rule for cubic equations of state., Fluid Phase Equilib, 60, p. 213, DOI: 10.1016/0378-3812(90)85053-D</label>
          <listPosition>378</listPosition>
          <doi>10.1016/0378-3812(90)85053-D</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181958</mtid>
          <link>/api/reference/61181958</link>
          <label>379. Dahl 1990: High-pressure vapor-liquid equilibrium with a UNIFAC-based equation of state., AIChE J, 36, p. 1829, DOI: 10.1002/aic.690361207</label>
          <listPosition>379</listPosition>
          <doi>10.1002/aic.690361207</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181959</mtid>
          <link>/api/reference/61181959</link>
          <label>380. Dahl 1991: The MHV2 model: A UNIFAC-based equation of state model for prediction of gas solubility and vapor-liquid equilibria at low and high pressures., Ind Eng Chem Res, 30, p. 1936, DOI: 10.1021/ie00056a041</label>
          <listPosition>380</listPosition>
          <doi>10.1021/ie00056a041</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181960</mtid>
          <link>/api/reference/61181960</link>
          <label>381. Wong 1992: A theoretically correct mixing rule for cubic equations of state., AIChE J, 38, p. 671, DOI: 10.1002/aic.690380505</label>
          <listPosition>381</listPosition>
          <doi>10.1002/aic.690380505</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181961</mtid>
          <link>/api/reference/61181961</link>
          <label>382. Jaubert 2004: VLE predictions with the Peng-Robinson equation of state and temperature dependent kij calculated through a group contribution method., Fluid Phase Equilib, 224, p. 285, DOI: 10.1016/j.fluid.2004.06.059</label>
          <listPosition>382</listPosition>
          <doi>10.1016/j.fluid.2004.06.059</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181962</mtid>
          <link>/api/reference/61181962</link>
          <label>383. Jaubert 2010: Relationship between the binary interaction parameters (kij) of the Peng–Robinson and those of the Soave–Redlich–Kwong equations of state: Application to the definition of the PR2SRK model., Fluid Phase Equilib, 295, p. 26, DOI: 10.1016/j.fluid.2010.03.037</label>
          <listPosition>383</listPosition>
          <doi>10.1016/j.fluid.2010.03.037</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181963</mtid>
          <link>/api/reference/61181963</link>
          <label>384. Chen 2022: Combining cubic equations with group contribution methods to predict cycle performances and design working fluids for four different organic Rankine cycles., Energy Consvers Manag X, 15, p. 10025</label>
          <listPosition>384</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181964</mtid>
          <link>/api/reference/61181964</link>
          <label>385. Ahlers 2001: Development of a universal group contribution equation of state. I. Prediction of liquid densities for pure compounds with a volume translated Peng-Robinson equation of state., Fluid Phase Equilib, 191, p. 177, DOI: 10.1016/S0378-3812(01)00626-4</label>
          <listPosition>385</listPosition>
          <doi>10.1016/S0378-3812(01)00626-4</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181965</mtid>
          <link>/api/reference/61181965</link>
          <label>386. Peng 2020: How to evaluate the performance of sub-critical organic rankine cycle from key properties of working fluids by group contribution methods?., Energy Convers Manag, 221, DOI: 10.1016/j.enconman.2020.113204</label>
          <listPosition>386</listPosition>
          <doi>10.1016/j.enconman.2020.113204</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181966</mtid>
          <link>/api/reference/61181966</link>
          <label>387. Su 2017: Developing a performance evaluation model of organic rankine cycle for working fluids based on the group contribution method., Energy Convers Manag, 132, p. 307, DOI: 10.1016/j.enconman.2016.11.040</label>
          <listPosition>387</listPosition>
          <doi>10.1016/j.enconman.2016.11.040</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181967</mtid>
          <link>/api/reference/61181967</link>
          <label>388. Nannoolal 2007: Estimation of pure component properties. Part 2. Estimation of critical property data by group contribution., Fluid Phase Equilib, 252, p. 1, DOI: 10.1016/j.fluid.2006.11.014</label>
          <listPosition>388</listPosition>
          <doi>10.1016/j.fluid.2006.11.014</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181968</mtid>
          <link>/api/reference/61181968</link>
          <label>389. Lemmon 2018: NIST standard reference database 23: Reference fluid thermodynamic and transport properties-REFPROP, version 10.0, national institute of standards and technology</label>
          <listPosition>389</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181969</mtid>
          <link>/api/reference/61181969</link>
          <label>390. Blas 1997: Thermodynamic behaviour of homonuclear and heteronuclear Lennard-Jones chains with association sites from simulation and theory., Mol Phys, 92, p. 135, DOI: 10.1080/00268979709482082</label>
          <listPosition>390</listPosition>
          <doi>10.1080/00268979709482082</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181970</mtid>
          <link>/api/reference/61181970</link>
          <label>391. Gil-Villegas 1997: Statistical associating fluid theory for chain molecules with attractive potentials of variable range., J Chem Phys, 106, p. 4168, DOI: 10.1063/1.473101</label>
          <listPosition>391</listPosition>
          <doi>10.1063/1.473101</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181971</mtid>
          <link>/api/reference/61181971</link>
          <label>392. Galindo 1998: The thermodynamics of mixtures and the corresponding mixing rules in the SAFT-VR approach for potentials of variable range., Mol Phys, 93, p. 241, DOI: 10.1080/00268979809482207</label>
          <listPosition>392</listPosition>
          <doi>10.1080/00268979809482207</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181972</mtid>
          <link>/api/reference/61181972</link>
          <label>393. Müller 1995: An equation of state for water from a simplified intermolecular potential., Ind Eng Chem Res, 34, p. 3662, DOI: 10.1021/ie00037a055</label>
          <listPosition>393</listPosition>
          <doi>10.1021/ie00037a055</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181973</mtid>
          <link>/api/reference/61181973</link>
          <label>394. Xu 1998: Application of perturbation theory to chain and polar fluids pure alkanes, alkanols and water., Fluid Phase Equilib, 142, p. 55, DOI: 10.1016/S0378-3812(97)00217-3</label>
          <listPosition>394</listPosition>
          <doi>10.1016/S0378-3812(97)00217-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181974</mtid>
          <link>/api/reference/61181974</link>
          <label>395. Jog 1999: Application of Wertheim’s thermodynamic perturbation theory to dipolar hard sphere chains., Mol Phys, 97, p. 307, DOI: 10.1080/00268979909482832</label>
          <listPosition>395</listPosition>
          <doi>10.1080/00268979909482832</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181975</mtid>
          <link>/api/reference/61181975</link>
          <label>396. Jog 2001: Application of dipolar chain theory to the phase behavior of polar fluids and mixtures., Ind Eng Chem Res, 40, p. 4641, DOI: 10.1021/ie010264+</label>
          <listPosition>396</listPosition>
          <doi>10.1021/ie010264+</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181976</mtid>
          <link>/api/reference/61181976</link>
          <label>397. Tumakaka 2004: Application of the perturbed-chain SAFT equation of state to polar systems., Fluid Phase Equilib, 217, p. 233, DOI: 10.1016/j.fluid.2002.12.002</label>
          <listPosition>397</listPosition>
          <doi>10.1016/j.fluid.2002.12.002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181977</mtid>
          <link>/api/reference/61181977</link>
          <label>398. Gross 2005: An equation of state contribution for polar components: Dipolar molecules., AIChE J, 52, p. 1194, DOI: 10.1002/aic.10683</label>
          <listPosition>398</listPosition>
          <doi>10.1002/aic.10683</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181978</mtid>
          <link>/api/reference/61181978</link>
          <label>399. Gross 2005: An equation of state contribution for polar components: Quadrupolar molecules., AIChE J, 51, p. 2556, DOI: 10.1002/aic.10502</label>
          <listPosition>399</listPosition>
          <doi>10.1002/aic.10502</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181979</mtid>
          <link>/api/reference/61181979</link>
          <label>400. Karakatsani 2005: Extended statistical associating fluid theory (SAFT) equations of state for dipolar fluids., AIChE J, 51, p. 2328, DOI: 10.1002/aic.10473</label>
          <listPosition>400</listPosition>
          <doi>10.1002/aic.10473</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181980</mtid>
          <link>/api/reference/61181980</link>
          <label>401. Karakatsani 2006: Evaluation of the truncated perturbed chain-polar statistical associating fluid theory for complex mixture fluid phase equilibria., Ind Eng Chem Res, 45, p. 6063, DOI: 10.1021/ie060313o</label>
          <listPosition>401</listPosition>
          <doi>10.1021/ie060313o</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181981</mtid>
          <link>/api/reference/61181981</link>
          <label>402. Karakatsani 2006: Perturbed chain-statistical associating fluid theory extended to dipolar and quadrupolar molecular fluids., J Phys Chem B, 110, p. 9252, DOI: 10.1021/jp056957b</label>
          <listPosition>402</listPosition>
          <doi>10.1021/jp056957b</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181982</mtid>
          <link>/api/reference/61181982</link>
          <label>403. Zhao 2006: Phase behavior of dipolar fluids from a modified statistical associating fluid theory for potentials of variable range., J Chem Phys, 125, DOI: 10.1063/1.2337624</label>
          <listPosition>403</listPosition>
          <doi>10.1063/1.2337624</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181983</mtid>
          <link>/api/reference/61181983</link>
          <label>404. Leonhard 2007: Making equation of state models predictive-part 3: Improved treatment of multipolar interactions in a PC-SAFT based equation of state., J Phys Chem C, 111, p. 15533, DOI: 10.1021/jp0726081</label>
          <listPosition>404</listPosition>
          <doi>10.1021/jp0726081</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181984</mtid>
          <link>/api/reference/61181984</link>
          <label>405. Kleiner 2007: Modeling of polar systems using PCP-SAFT: An approach to account for induced-association interactions., J Phys Chem C, 111, p. 15544, DOI: 10.1021/jp072640v</label>
          <listPosition>405</listPosition>
          <doi>10.1021/jp072640v</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181985</mtid>
          <link>/api/reference/61181985</link>
          <label>406. Liu 1999: A new equation of state for real aqueous ionic fluids based on electrolyte perturbation theory, mean spherical approximation and statistical associating fluid theory., Fluid Phase Equilib, 158–160, p. 595, DOI: 10.1016/S0378-3812(99)00082-5</label>
          <listPosition>406</listPosition>
          <doi>10.1016/S0378-3812(99)00082-5</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181986</mtid>
          <link>/api/reference/61181986</link>
          <label>407. Galindo 1999: SAFT-VRE: Phase behavior of electrolyte solutions with the statistical associating fluid theory for potentials of variable range., J Phys Chem B., 103, p. 10272, DOI: 10.1021/jp991959f</label>
          <listPosition>407</listPosition>
          <doi>10.1021/jp991959f</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181987</mtid>
          <link>/api/reference/61181987</link>
          <label>408. Patel 2003: Prediction of the salting-out effect of strong electrolytes on water + alkane solutions., Ind Eng Chem Res, 42, p. 3809, DOI: 10.1021/ie020918u</label>
          <listPosition>408</listPosition>
          <doi>10.1021/ie020918u</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181988</mtid>
          <link>/api/reference/61181988</link>
          <label>409. Behzadi 2005: Modeling electrolyte solutions with the SAFT-VR equation using Yukawa potentials and the mean-spherical approximation., Fluid Phase Equilib, 236, p. 241, DOI: 10.1016/j.fluid.2005.07.019</label>
          <listPosition>409</listPosition>
          <doi>10.1016/j.fluid.2005.07.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181989</mtid>
          <link>/api/reference/61181989</link>
          <label>410. Cameretti 2005: Modeling of aqueous electrolyte solutions with perturbed-chain statistical associated fluid theory., Ind Eng Chem Res, 44, p. 3355, DOI: 10.1021/ie0488142</label>
          <listPosition>410</listPosition>
          <doi>10.1021/ie0488142</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181990</mtid>
          <link>/api/reference/61181990</link>
          <label>411. Zhao 2007: Development of an equation of state for electrolyte solutions by combining the statistical associating fluid theory and the mean spherical approximation for the nonprimitive model., J Chem Phys, 126, DOI: 10.1063/1.2733673</label>
          <listPosition>411</listPosition>
          <doi>10.1063/1.2733673</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181991</mtid>
          <link>/api/reference/61181991</link>
          <label>412. Held 2008: Modeling aqueous electrolyte solutions., Fluid Phase Equilib, 270, p. 87, DOI: 10.1016/j.fluid.2008.06.010</label>
          <listPosition>412</listPosition>
          <doi>10.1016/j.fluid.2008.06.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181992</mtid>
          <link>/api/reference/61181992</link>
          <label>413. Held 2009: Modeling aqueous electrolyte solutions. Part 2. Weak electrolytes., Fluid Phase Equilib, 279, p. 141, DOI: 10.1016/j.fluid.2009.02.015</label>
          <listPosition>413</listPosition>
          <doi>10.1016/j.fluid.2009.02.015</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181993</mtid>
          <link>/api/reference/61181993</link>
          <label>414. Rozmus 2013: Modeling of strong electrolytes with ePPC-SAFT up to high temperatures., Ind Eng Chem Res, 52, p. 9979, DOI: 10.1021/ie303527j</label>
          <listPosition>414</listPosition>
          <doi>10.1021/ie303527j</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181994</mtid>
          <link>/api/reference/61181994</link>
          <label>415. Schreckenberg 2014: Modelling of the thermodynamic and solvation properties of electrolyte solutions with the statistical associating fluid theory for potentials of variable range., Mol Phys, 112, p. 2339, DOI: 10.1080/00268976.2014.910316</label>
          <listPosition>415</listPosition>
          <doi>10.1080/00268976.2014.910316</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181995</mtid>
          <link>/api/reference/61181995</link>
          <label>416. Maribo-Mogensen 2015: An electrolyte CPA equation of state for mixed solvent electrolytes., AIChE J, 61, p. 2933, DOI: 10.1002/aic.14829</label>
          <listPosition>416</listPosition>
          <doi>10.1002/aic.14829</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181996</mtid>
          <link>/api/reference/61181996</link>
          <label>417. Eriksen 2016: Development of intermolecular potential models for electrolyte solutions using an electrolyte SAFT-VR Mie equation of state., Mol Phys, 114, p. 2724, DOI: 10.1080/00268976.2016.1236221</label>
          <listPosition>417</listPosition>
          <doi>10.1080/00268976.2016.1236221</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181997</mtid>
          <link>/api/reference/61181997</link>
          <label>418. Selam 2018: A thermodynamic model for strong aqueous electrolytes based on the eSAFT-VR Mie equation of state., Fluid Phase Equilib, 47–63, p. 464</label>
          <listPosition>418</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181998</mtid>
          <link>/api/reference/61181998</link>
          <label>419. Lampe 2015: Computer-aided molecular design in the continuous-molecular targeting framework using group-contribution PC-SAFT., Comput Chem Eng, 81, p. 278, DOI: 10.1016/j.compchemeng.2015.04.008</label>
          <listPosition>419</listPosition>
          <doi>10.1016/j.compchemeng.2015.04.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61181999</mtid>
          <link>/api/reference/61181999</link>
          <label>420. Schilling 2016: One-stage approach for the integrated design of ORC processes and working fluid using PC-SAFT.26th European symposium on computer aided process engineering (ESCAPE), PT b, 38B, p. 1335</label>
          <listPosition>420</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182000</mtid>
          <link>/api/reference/61182000</link>
          <label>421. Schilling 2017: Integrated thermo-economic design of ORC process, working fluid and equipment using PC-SAFT.27th European symposium on computer aided process engineering (ESCAPE), PT b, 40, p. 1795</label>
          <listPosition>421</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182001</mtid>
          <link>/api/reference/61182001</link>
          <label>422. Schilling 2017: Integrating working fluid design into the thermo-economic design of ORC processes using PC-SAFT.4th international seminar on ORC power systems, 129, p. 121</label>
          <listPosition>422</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182002</mtid>
          <link>/api/reference/61182002</link>
          <label>423. Schilling 2017: Integrated design of ORC process and working fluid using process flowsheeting software and PC-SAFT.4th international seminar on ORC power systems, 129, p. 129</label>
          <listPosition>423</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182003</mtid>
          <link>/api/reference/61182003</link>
          <label>424. Schilling 2017: 1-stage CoMT-CAMD: An approach for integrated design of ORC process and working fluid using PC-SAFT., Chem Eng Sci, 159, p. 217, DOI: 10.1016/j.ces.2016.04.048</label>
          <listPosition>424</listPosition>
          <doi>10.1016/j.ces.2016.04.048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182004</mtid>
          <link>/api/reference/61182004</link>
          <label>425. Tillmanns 2017: Integrated design of ORC process and working fluid using PC-SAFT and Modelica.4th international seminar on ORC power systems, 129, p. 97</label>
          <listPosition>425</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182005</mtid>
          <link>/api/reference/61182005</link>
          <label>426. Schilling 2018: Integrated design of ORC process and working fluid for transient waste-heat recovery from heavy-duty vehicles.13th international symposium on process systems engineering (PSE 2018), Vol. 44, p. 2443</label>
          <listPosition>426</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182006</mtid>
          <link>/api/reference/61182006</link>
          <label>427. Schilling 2019: Integrated design of working fluid and organic Rankine cycle utilizing transient exhaust gases of heavy-duty vehicles., Appl Energy, 255, DOI: 10.1016/j.apenergy.2019.05.010</label>
          <listPosition>427</listPosition>
          <doi>10.1016/j.apenergy.2019.05.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182007</mtid>
          <link>/api/reference/61182007</link>
          <label>428. Schilling 2020: Integrating superstructure-based design of molecules, processes and flowsheets., AIChE J, 66, DOI: 10.1002/aic.16903</label>
          <listPosition>428</listPosition>
          <doi>10.1002/aic.16903</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182008</mtid>
          <link>/api/reference/61182008</link>
          <label>429. Zhang 2016: Evaluation of ejector performance for an organic Rankine cycle combined power and cooling system., Appl Energy, 184, p. 404, DOI: 10.1016/j.apenergy.2016.10.017</label>
          <listPosition>429</listPosition>
          <doi>10.1016/j.apenergy.2016.10.017</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182009</mtid>
          <link>/api/reference/61182009</link>
          <label>430. Pantaleo 2017: Solar/biomass hybrid cycles with thermal storage and bottoming ORC: System integration and economic analysis.4th international seminar on ORC power systems, 129, p. 724</label>
          <listPosition>430</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182010</mtid>
          <link>/api/reference/61182010</link>
          <label>431. Pantaleo 2017: Thermo-economic assessment of an externally fired hybrid CSP/biomass gas turbine and organic Rankine combined cycle.8th international conference on applied energy (ICAE2016), 105, p. 174</label>
          <listPosition>431</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182011</mtid>
          <link>/api/reference/61182011</link>
          <label>432. Pantaleo 2017: Novel hybrid CSP-biomass CHP for flexible generation: Thermo-economic analysis and profitability assessment., Appl Energy, 204, p. 994, DOI: 10.1016/j.apenergy.2017.05.019</label>
          <listPosition>432</listPosition>
          <doi>10.1016/j.apenergy.2017.05.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182012</mtid>
          <link>/api/reference/61182012</link>
          <label>433. Oyewunmi 2017: An assessment of subcritical and trans-critical organic Rankine cycles for waste-heat recovery.8th international conference on applied energy (ICAE2016), 105, p. 1870</label>
          <listPosition>433</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182013</mtid>
          <link>/api/reference/61182013</link>
          <label>434. Oyewunmi 2017: ORC cogeneration systems in waste-heat recovery applications.Proceedings of the 9th international conference on applied energy, 142, p. 1736</label>
          <listPosition>434</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182014</mtid>
          <link>/api/reference/61182014</link>
          <label>435. Oyewunmi 2017: Thermoeconomic analysis of recuperative sub- and transcritical organic Rankine cycle systems.4th international seminar on ORC power systems, 129, p. 58</label>
          <listPosition>435</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182015</mtid>
          <link>/api/reference/61182015</link>
          <label>436. Ramos 2018: Optimisation of a high-efficiency solar-driven organic Rankine cycle for applications in the built environment., Appl Energy, 228, p. 755, DOI: 10.1016/j.apenergy.2018.06.059</label>
          <listPosition>436</listPosition>
          <doi>10.1016/j.apenergy.2018.06.059</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182016</mtid>
          <link>/api/reference/61182016</link>
          <label>437. Unamba 2019: Operational optimisation of a non-recuperative 1-kWe organic Rankine cycle engine prototype., Appl Sci-Basel, 9</label>
          <listPosition>437</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182017</mtid>
          <link>/api/reference/61182017</link>
          <label>438. Simpson 2019: Technoeconomic analysis of internal combustion engine - organic Rankine cycle systems for combined heat and power in energy-intensive buildings., Appl Energy, 253, DOI: 10.1016/j.apenergy.2019.113462</label>
          <listPosition>438</listPosition>
          <doi>10.1016/j.apenergy.2019.113462</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182018</mtid>
          <link>/api/reference/61182018</link>
          <label>439. Pantaleo 2020: Hybrid solar-biomass combined Brayton/organic Rankine-cycle plants integrated with thermal storage: Techno-economic feasibility in selected Mediterranean areas., Renew Energy, 147, p. 2913, DOI: 10.1016/j.renene.2018.08.022</label>
          <listPosition>439</listPosition>
          <doi>10.1016/j.renene.2018.08.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182019</mtid>
          <link>/api/reference/61182019</link>
          <label>440. Shaahmadi 2023: Group-contribution SAFT equations of state: A review., Fluid Phase Equilib, 565, DOI: 10.1016/j.fluid.2022.113674</label>
          <listPosition>440</listPosition>
          <doi>10.1016/j.fluid.2022.113674</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182020</mtid>
          <link>/api/reference/61182020</link>
          <label>441. Vijande 2004: Description of PVT behaviour of hydrofluoroethers using the PC-SAFT eos., Phys Chem Chem Phys, 6, p. 766, DOI: 10.1039/B312223A</label>
          <listPosition>441</listPosition>
          <doi>10.1039/B312223A</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182021</mtid>
          <link>/api/reference/61182021</link>
          <label>442. Thi 2005: Application of group contribution SAFT equation of state (GC-SAFT) to model phase behaviour of light and heavy esters., Fluid Phase Equilib, 238, p. 254, DOI: 10.1016/j.fluid.2005.10.009</label>
          <listPosition>442</listPosition>
          <doi>10.1016/j.fluid.2005.10.009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182022</mtid>
          <link>/api/reference/61182022</link>
          <label>443. Nguyen-Huynh 2011: Ind Eng Chem Res, 50, p. 7467, DOI: 10.1021/ie102045g</label>
          <listPosition>443</listPosition>
          <doi>10.1021/ie102045g</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182023</mtid>
          <link>/api/reference/61182023</link>
          <label>444. Paduszyński 2012: Heterosegmented perturbed-chain statistical associating fluid theory as a robust and accurate tool for modeling of various alkanes. 1. Pure fluids., Ind Eng Chem Res, 51, p. 12967, DOI: 10.1021/ie301998j</label>
          <listPosition>444</listPosition>
          <doi>10.1021/ie301998j</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182024</mtid>
          <link>/api/reference/61182024</link>
          <label>445. Sauer 2014: Comparison between a homo-and a heterosegmented group contribution approach based on the perturbed-chain polar statistical associating fluid theory equation of state., Ind Eng Chem Res, 53, p. 14854, DOI: 10.1021/ie502203w</label>
          <listPosition>445</listPosition>
          <doi>10.1021/ie502203w</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182025</mtid>
          <link>/api/reference/61182025</link>
          <label>446. dos Ramos 2011: Extending the GC-SAFT-VR approach to associating functional groups: Alcohols, aldehydes, amines and carboxylic acids., Fluid Phase Equilib, 306, p. 97, DOI: 10.1016/j.fluid.2011.03.026</label>
          <listPosition>446</listPosition>
          <doi>10.1016/j.fluid.2011.03.026</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182026</mtid>
          <link>/api/reference/61182026</link>
          <label>447. White 2017: Industrial waste-heat recovery through integrated computer-aided working-fluid and ORC system optimisation using SAFT-γ Mie., Energy Convers Manage, 150, p. 851, DOI: 10.1016/j.enconman.2017.03.048</label>
          <listPosition>447</listPosition>
          <doi>10.1016/j.enconman.2017.03.048</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182027</mtid>
          <link>/api/reference/61182027</link>
          <label>448. White 2017: Integrated computer-aided working-fluid design and thermoeconomic ORC system optimisation.4th international seminar on ORC power systems, Vol. 129, p. 152</label>
          <listPosition>448</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182028</mtid>
          <link>/api/reference/61182028</link>
          <label>449. Harraz 2019: Diffusion-absorption refrigeration cycle simulations in gPROMS using SAFT-γ Mie., Energy Procedia, 158, p. 2360, DOI: 10.1016/j.egypro.2019.01.284</label>
          <listPosition>449</listPosition>
          <doi>10.1016/j.egypro.2019.01.284</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182029</mtid>
          <link>/api/reference/61182029</link>
          <label>450. Bowskill 2020: Beyond a heuristic analysis: integration of process and working-fluid design for organic Rankine cycles., Mol Syst Des Eng, 5, p. 493, DOI: 10.1039/C9ME00089E</label>
          <listPosition>450</listPosition>
          <doi>10.1039/C9ME00089E</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182030</mtid>
          <link>/api/reference/61182030</link>
          <label>451. Harraz 2024: An integrated computer-aided molecular design framework for a diffusion-absorption refrigeration system., Energy Convers Manag</label>
          <listPosition>451</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182031</mtid>
          <link>/api/reference/61182031</link>
          <label>452. Rehner 2023: Molecule superstructures for computer-aided molecular and process design., Mol Syst Des Eng, 8, p. 488, DOI: 10.1039/D2ME00230B</label>
          <listPosition>452</listPosition>
          <doi>10.1039/D2ME00230B</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182032</mtid>
          <link>/api/reference/61182032</link>
          <label>453. Rehner 2023: Modeling mixtures with PCP-SAFT: Insights from large-scale parametrization and group-contribution method for binary interaction parameters., Int J Thermophys, 44, p. 179, DOI: 10.1007/s10765-023-03290-3</label>
          <listPosition>453</listPosition>
          <doi>10.1007/s10765-023-03290-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182033</mtid>
          <link>/api/reference/61182033</link>
          <label>454. Chaparro 2023: Development of thermodynamically consistent machine-learning equations of state: Application to the Mie fluid., J Chem Phys, 158, DOI: 10.1063/5.0146634</label>
          <listPosition>454</listPosition>
          <doi>10.1063/5.0146634</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182034</mtid>
          <link>/api/reference/61182034</link>
          <label>455. Biswas 2023: J Chem Inf Model, 63, p. 4574, DOI: 10.1021/acs.jcim.3c00546</label>
          <listPosition>455</listPosition>
          <doi>10.1021/acs.jcim.3c00546</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182035</mtid>
          <link>/api/reference/61182035</link>
          <label>456. Matsukawa 2021: Estimation of pure component parameters of PC-SAFT EoS by an artificial neural network based on a group contribution method., Fluid Phase Equilib, 548, DOI: 10.1016/j.fluid.2021.113179</label>
          <listPosition>456</listPosition>
          <doi>10.1016/j.fluid.2021.113179</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182036</mtid>
          <link>/api/reference/61182036</link>
          <label>457. Habicht 2023: Predicting PC-SAFT pure-component parameters by machine learning using a molecular fingerprint as key input., Fluid Phase Equilib, 565, DOI: 10.1016/j.fluid.2022.113657</label>
          <listPosition>457</listPosition>
          <doi>10.1016/j.fluid.2022.113657</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182037</mtid>
          <link>/api/reference/61182037</link>
          <label>458. Felton 2024: ML-SAFT: a machine learning framework for PCP-SAFT parameter prediction., Chem Eng J, DOI: 10.1016/j.cej.2024.151999</label>
          <listPosition>458</listPosition>
          <doi>10.1016/j.cej.2024.151999</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182038</mtid>
          <link>/api/reference/61182038</link>
          <label>459. Winter 2023: Understanding the language of molecules: Predicting pure component parameters for the PC-SAFT equation of state from SMILES</label>
          <listPosition>459</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182039</mtid>
          <link>/api/reference/61182039</link>
          <label>460. Sastri 1999: A new temperature–thermal conductivity relationship for predicting saturated liquid thermal conductivity., Chem Eng J, 74, p. 161, DOI: 10.1016/S1385-8947(99)00046-7</label>
          <listPosition>460</listPosition>
          <doi>10.1016/S1385-8947(99)00046-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182040</mtid>
          <link>/api/reference/61182040</link>
          <label>461. Chung 1984: Applications of kinetic gas theories and multiparameter correlation for prediction of dilute gas viscosity and thermal conductivity., Ind Eng Chem Fundam, 23, p. 8, DOI: 10.1021/i100013a002</label>
          <listPosition>461</listPosition>
          <doi>10.1021/i100013a002</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182041</mtid>
          <link>/api/reference/61182041</link>
          <label>462. Quiñones-Cisneros 2000: The friction theory (f-theory) for viscosity modeling., Fluid Phase Equilib, 169, p. 249, DOI: 10.1016/S0378-3812(00)00310-1</label>
          <listPosition>462</listPosition>
          <doi>10.1016/S0378-3812(00)00310-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182042</mtid>
          <link>/api/reference/61182042</link>
          <label>463. Allal 2001: Free-volume viscosity model for fluids in the dense and gaseous states., Phys Rev E, 64, DOI: 10.1103/PhysRevE.64.011203</label>
          <listPosition>463</listPosition>
          <doi>10.1103/PhysRevE.64.011203</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182043</mtid>
          <link>/api/reference/61182043</link>
          <label>464. Rosenfeld 1977: Relation between the transport coefficients and the internal entropy of simple systems., Phys Rev A, 15, p. 2545, DOI: 10.1103/PhysRevA.15.2545</label>
          <listPosition>464</listPosition>
          <doi>10.1103/PhysRevA.15.2545</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182044</mtid>
          <link>/api/reference/61182044</link>
          <label>465. Rosenfeld 1999: A quasi-universal scaling law for atomic transport in simple fluids., J Phys: Condens Matter, 11, p. 5415</label>
          <listPosition>465</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182045</mtid>
          <link>/api/reference/61182045</link>
          <label>466. Novak 2011: Self-diffusion coefficient and viscosity in fluids., Int J Chem React Eng, 9</label>
          <listPosition>466</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182046</mtid>
          <link>/api/reference/61182046</link>
          <label>467. Novak 2011: Fluid viscosity-residual entropy correlation., Int J Chem React Eng, 9</label>
          <listPosition>467</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182047</mtid>
          <link>/api/reference/61182047</link>
          <label>468. Novak 2013: Predicting natural gas viscosity with a mixture viscosity model for the entire fluid region., Ind Eng Chem Res, 52, p. 16014, DOI: 10.1021/ie402245e</label>
          <listPosition>468</listPosition>
          <doi>10.1021/ie402245e</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182048</mtid>
          <link>/api/reference/61182048</link>
          <label>469. Novak 2013: Predictive corresponding-states viscosity model for the entire fluid region: n-alkanes., Ind Eng Chem Res, 52, p. 6841, DOI: 10.1021/ie400654p</label>
          <listPosition>469</listPosition>
          <doi>10.1021/ie400654p</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182049</mtid>
          <link>/api/reference/61182049</link>
          <label>470. Novak 2015: Predicting fluid viscosity of nonassociating molecules., Ind Eng Chem Res, 54, p. 5830, DOI: 10.1021/acs.iecr.5b01526</label>
          <listPosition>470</listPosition>
          <doi>10.1021/acs.iecr.5b01526</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182050</mtid>
          <link>/api/reference/61182050</link>
          <label>471. Lötgering-Lin 2015: Group contribution method for viscosities based on entropy scaling using the perturbed-chain polar statistical associating fluid theory., Ind Eng Chem Res, 54, p. 7942, DOI: 10.1021/acs.iecr.5b01698</label>
          <listPosition>471</listPosition>
          <doi>10.1021/acs.iecr.5b01698</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182051</mtid>
          <link>/api/reference/61182051</link>
          <label>472. Lötgering-Lin 2018: Pure substance and mixture viscosities based on entropy scaling and an analytic equation of state., Ind Eng Chem Res, 57, p. 4095, DOI: 10.1021/acs.iecr.7b04871</label>
          <listPosition>472</listPosition>
          <doi>10.1021/acs.iecr.7b04871</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182052</mtid>
          <link>/api/reference/61182052</link>
          <label>473. Hopp 2017: Thermal conductivity of real substances from excess entropy scaling using PCP-SAFT., Ind Eng Chem Res, 56, p. 4527, DOI: 10.1021/acs.iecr.6b04289</label>
          <listPosition>473</listPosition>
          <doi>10.1021/acs.iecr.6b04289</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182053</mtid>
          <link>/api/reference/61182053</link>
          <label>474. Hopp 2018: Self-diffusion coefficients from entropy scaling using the PCP-SAFT equation of state., Ind Eng Chem Res, 57, p. 12942, DOI: 10.1021/acs.iecr.8b02406</label>
          <listPosition>474</listPosition>
          <doi>10.1021/acs.iecr.8b02406</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182054</mtid>
          <link>/api/reference/61182054</link>
          <label>475. Hopp 2019: Thermal conductivity from entropy scaling: A group-contribution method., Ind Eng Chem Res, 58, p. 20441, DOI: 10.1021/acs.iecr.9b04289</label>
          <listPosition>475</listPosition>
          <doi>10.1021/acs.iecr.9b04289</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182055</mtid>
          <link>/api/reference/61182055</link>
          <label>476. Zmpitas 2021: Modified Stokes–Einstein equation for molecular self-diffusion based on entropy scaling., Ind Eng Chem Res, 60, p. 4453, DOI: 10.1021/acs.iecr.0c06090</label>
          <listPosition>476</listPosition>
          <doi>10.1021/acs.iecr.0c06090</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182056</mtid>
          <link>/api/reference/61182056</link>
          <label>477. Bell 2019: Modified entropy scaling of the transport properties of the Lennard-Jones fluid., J Phys Chem B, 123, p. 6345, DOI: 10.1021/acs.jpcb.9b05808</label>
          <listPosition>477</listPosition>
          <doi>10.1021/acs.jpcb.9b05808</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182057</mtid>
          <link>/api/reference/61182057</link>
          <label>478. Bell 2019: Probing the link between residual entropy and viscosity of molecular fluids and model potentials., Proc Natl Acad Sci, 116, p. 4070, DOI: 10.1073/pnas.1815943116</label>
          <listPosition>478</listPosition>
          <doi>10.1073/pnas.1815943116</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182058</mtid>
          <link>/api/reference/61182058</link>
          <label>479. Bell 2020: Excess-entropy scaling in supercooled binary mixtures., Nat Commun, 11, p. 4300, DOI: 10.1038/s41467-020-17948-1</label>
          <listPosition>479</listPosition>
          <doi>10.1038/s41467-020-17948-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182059</mtid>
          <link>/api/reference/61182059</link>
          <label>480. Bell 2020: Zero-density limit of the residual entropy scaling of transport properties., J Chem Eng Data, 65, p. 1038, DOI: 10.1021/acs.jced.9b00455</label>
          <listPosition>480</listPosition>
          <doi>10.1021/acs.jced.9b00455</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182060</mtid>
          <link>/api/reference/61182060</link>
          <label>481. Bell 2020: Entropy scaling of viscosity–I: A case study of propane., J Chem Eng Data, 65, p. 3203, DOI: 10.1021/acs.jced.0c00209</label>
          <listPosition>481</listPosition>
          <doi>10.1021/acs.jced.0c00209</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182061</mtid>
          <link>/api/reference/61182061</link>
          <label>482. Bell 2020: Entropy scaling of viscosity–II: Predictive scheme for normal alkanes., J Chem Eng Data, 65, p. 5606, DOI: 10.1021/acs.jced.0c00749</label>
          <listPosition>482</listPosition>
          <doi>10.1021/acs.jced.0c00749</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182062</mtid>
          <link>/api/reference/61182062</link>
          <label>483. Yang 2021: Entropy scaling of viscosity–III: Application to refrigerants and their mixtures., J Chem Eng Data, 66, p. 1385, DOI: 10.1021/acs.jced.0c01009</label>
          <listPosition>483</listPosition>
          <doi>10.1021/acs.jced.0c01009</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182063</mtid>
          <link>/api/reference/61182063</link>
          <label>484. Yang 2022: Linking viscosity to equations of state using residual entropy scaling theory., Int J Thermophys, 43, p. 183, DOI: 10.1007/s10765-022-03096-9</label>
          <listPosition>484</listPosition>
          <doi>10.1007/s10765-022-03096-9</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182064</mtid>
          <link>/api/reference/61182064</link>
          <label>485. Dortmund Data Bank, 2015, www.ddbst.com.</label>
          <listPosition>485</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182065</mtid>
          <link>/api/reference/61182065</link>
          <label>486. Liu 2011: Predictive Darken equation for Maxwell-Stefan diffusivities in multicomponent mixtures., Ind Eng Chem Res, 50, p. 10350, DOI: 10.1021/ie201008a</label>
          <listPosition>486</listPosition>
          <doi>10.1021/ie201008a</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182066</mtid>
          <link>/api/reference/61182066</link>
          <label>487. Essa 2020: Selection of optimal fluid for refrigeration cycles., World J Adv Eng Technol Sci, 01, p. 021, DOI: 10.30574/wjaets.2020.1.2.0031</label>
          <listPosition>487</listPosition>
          <doi>10.30574/wjaets.2020.1.2.0031</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182067</mtid>
          <link>/api/reference/61182067</link>
          <label>488. Su 2017: Simultaneous working fluids design and cycle optimization for organic Rankine cycle using group contribution model., Appl Energy, 202, p. 618, DOI: 10.1016/j.apenergy.2017.03.133</label>
          <listPosition>488</listPosition>
          <doi>10.1016/j.apenergy.2017.03.133</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182068</mtid>
          <link>/api/reference/61182068</link>
          <label>489. Kondo 2001: Prediction of flammability of gases by using F-number analysis., J Hard Mater, 82, p. 113, DOI: 10.1016/S0304-3894(00)00358-7</label>
          <listPosition>489</listPosition>
          <doi>10.1016/S0304-3894(00)00358-7</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182069</mtid>
          <link>/api/reference/61182069</link>
          <label>490. Albahri 2003: Flammability characteristics of pure hydrocarbons., Chem Eng Sci, 58, p. 3629, DOI: 10.1016/S0009-2509(03)00251-3</label>
          <listPosition>490</listPosition>
          <doi>10.1016/S0009-2509(03)00251-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182070</mtid>
          <link>/api/reference/61182070</link>
          <label>491. Catoire 2005: Estimation of temperature-dependent lower flammability limit of pure organic compounds in air at atmospheric pressurep. 130</label>
          <listPosition>491</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182071</mtid>
          <link>/api/reference/61182071</link>
          <label>492. Gharagheizi 2009: A new group contribution-based model for estimation of lower flammability limit of pure compounds., J Hard Mater, 170, p. 595, DOI: 10.1016/j.jhazmat.2009.05.023</label>
          <listPosition>492</listPosition>
          <doi>10.1016/j.jhazmat.2009.05.023</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182072</mtid>
          <link>/api/reference/61182072</link>
          <label>493. S. 1992: Estimating tropospheric lifetimes and ozone-depletion potentials of one- and two-carbon hydrofluorocarbons and hydrochlorofluorocarbons., Environ Sci Technol, 26, p. 739, DOI: 10.1021/es00028a011</label>
          <listPosition>493</listPosition>
          <doi>10.1021/es00028a011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182073</mtid>
          <link>/api/reference/61182073</link>
          <label>494. Duvedi 1996: Designing environmentally safe refrigerants using mathematical programming., Chem Eng Sci, 51, p. 3727, DOI: 10.1016/0009-2509(96)00224-2</label>
          <listPosition>494</listPosition>
          <doi>10.1016/0009-2509(96)00224-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182074</mtid>
          <link>/api/reference/61182074</link>
          <label>495. Al 2018: Prediction of environmental properties using a hybrid group contribution approach., Comput Aided Chem Eng, 44, p. 1723, DOI: 10.1016/B978-0-444-64241-7.50282-2</label>
          <listPosition>495</listPosition>
          <doi>10.1016/B978-0-444-64241-7.50282-2</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182075</mtid>
          <link>/api/reference/61182075</link>
          <label>496. An 2008: Discussion of refrigerant GWP calculation based on group contribution method., Kung Cheng Je Wu Li Hsueh Pao/J Eng Thermophys, 29, p. 1826</label>
          <listPosition>496</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182076</mtid>
          <link>/api/reference/61182076</link>
          <label>497. Devotta 2021: Prediction of global warming potentials of refrigerants and related compounds from their molecular structure – An artificial neural network with group contribution method., Int J Refrig, 131, p. 756, DOI: 10.1016/j.ijrefrig.2021.08.011</label>
          <listPosition>497</listPosition>
          <doi>10.1016/j.ijrefrig.2021.08.011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182077</mtid>
          <link>/api/reference/61182077</link>
          <label>498. Zhang 2014: Radiative efficiency estimation of organic substance based on group contribution method., Energy Proc, 61, p. 492, DOI: 10.1016/j.egypro.2014.11.1156</label>
          <listPosition>498</listPosition>
          <doi>10.1016/j.egypro.2014.11.1156</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182078</mtid>
          <link>/api/reference/61182078</link>
          <label>499. Zhang 2016: An organic group contribution approach to radiative efficiency estimation of organic working fluid., Appl Energy, 162, p. 1205, DOI: 10.1016/j.apenergy.2015.08.032</label>
          <listPosition>499</listPosition>
          <doi>10.1016/j.apenergy.2015.08.032</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182079</mtid>
          <link>/api/reference/61182079</link>
          <label>500. Wernet 2009: Bridging data gaps in environmental assessments: Modeling impacts of fine and basic chemical production., Green Chem, 11, p. 1826, DOI: 10.1039/b905558d</label>
          <listPosition>500</listPosition>
          <doi>10.1039/b905558d</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182080</mtid>
          <link>/api/reference/61182080</link>
          <label>501. Baxevanidis 2022: Group contribution-based LCA models to enable screening for environmentally benign novel chemicals in CAMD applications., AIChE J, 68, DOI: 10.1002/aic.17544</label>
          <listPosition>501</listPosition>
          <doi>10.1002/aic.17544</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182081</mtid>
          <link>/api/reference/61182081</link>
          <label>502. Kleinekorte 2023: Appropriate life cycle assessment: A process-specific, predictive impact assessment method for emerging chemical processes., ACS Sustain Chem Eng, 11, p. 9303, DOI: 10.1021/acssuschemeng.2c07682</label>
          <listPosition>502</listPosition>
          <doi>10.1021/acssuschemeng.2c07682</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182082</mtid>
          <link>/api/reference/61182082</link>
          <label>503. Kleinekorte 2019: A neural network-based framework to predict process-specific environmental impacts.29th European symposium on computer aided process engineering, vol. 46, p. 1447</label>
          <listPosition>503</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182083</mtid>
          <link>/api/reference/61182083</link>
          <label>504. Scheffczyk 2018: COSMO-campd: a framework for integrated design of molecules and processes based on COSMO-RS., Mol Syst Des Eng, 3, p. 645, DOI: 10.1039/C7ME00125H</label>
          <listPosition>504</listPosition>
          <doi>10.1039/C7ME00125H</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182084</mtid>
          <link>/api/reference/61182084</link>
          <label>505. Alshehri 2022: Next generation pure component property estimation models: With and without machine learning techniques., AIChE J, 68, DOI: 10.1002/aic.17469</label>
          <listPosition>505</listPosition>
          <doi>10.1002/aic.17469</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182085</mtid>
          <link>/api/reference/61182085</link>
          <label>506. Cao 2024: An improved machine learning model for pure component property estimation., Engineering, 39, p. 61, DOI: 10.1016/j.eng.2023.08.024</label>
          <listPosition>506</listPosition>
          <doi>10.1016/j.eng.2023.08.024</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182086</mtid>
          <link>/api/reference/61182086</link>
          <label>507. Zhang 2024: Enhanced deep-learning model for carbon footprints of chemicals., ACS Sustain Chem Eng, 12, p. 2700, DOI: 10.1021/acssuschemeng.3c07038</label>
          <listPosition>507</listPosition>
          <doi>10.1021/acssuschemeng.3c07038</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182087</mtid>
          <link>/api/reference/61182087</link>
          <label>508. Gani 2004: Chemical product design: Challenges and opportunities., Comput Chem Eng, 28, p. 2441, DOI: 10.1016/j.compchemeng.2004.08.010</label>
          <listPosition>508</listPosition>
          <doi>10.1016/j.compchemeng.2004.08.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182088</mtid>
          <link>/api/reference/61182088</link>
          <label>509. Struebing 2011: Identifying optimal solvents for reactions using quantum mechanics and computer-aided molecular design</label>
          <listPosition>509</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182089</mtid>
          <link>/api/reference/61182089</link>
          <label>510. Struebing 2011: Optimal solvent design for reactions using computer-aided molecular design</label>
          <listPosition>510</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182090</mtid>
          <link>/api/reference/61182090</link>
          <label>511. Balas 1972: Canonical cuts on the unit hypercube., SIAM J Appl Math, 23, p. 61, DOI: 10.1137/0123007</label>
          <listPosition>511</listPosition>
          <doi>10.1137/0123007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182091</mtid>
          <link>/api/reference/61182091</link>
          <label>512. Fazlollahi 2012: Methods for multi-objective investment and operating optimization of complex energy systems., Energy, 45, p. 12, DOI: 10.1016/j.energy.2012.02.046</label>
          <listPosition>512</listPosition>
          <doi>10.1016/j.energy.2012.02.046</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182092</mtid>
          <link>/api/reference/61182092</link>
          <label>513. Fink 2005: Virtual exploration of the small-molecule chemical universe below 160 Daltons., Angew Chem Int Ed, 44, p. 1504, DOI: 10.1002/anie.200462457</label>
          <listPosition>513</listPosition>
          <doi>10.1002/anie.200462457</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182093</mtid>
          <link>/api/reference/61182093</link>
          <label>514. Andrés-Martínez 2018: Optimal molecular design of low-temperature organic fluids under uncertain conditions., Ind Eng Chem Res, 57, p. 5058, DOI: 10.1021/acs.iecr.8b00302</label>
          <listPosition>514</listPosition>
          <doi>10.1021/acs.iecr.8b00302</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182094</mtid>
          <link>/api/reference/61182094</link>
          <label>515. Kossack 2008: A systematic synthesis framework for extractive distillation processes., Chem Eng Res Des, 86, p. 781, DOI: 10.1016/j.cherd.2008.01.008</label>
          <listPosition>515</listPosition>
          <doi>10.1016/j.cherd.2008.01.008</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182095</mtid>
          <link>/api/reference/61182095</link>
          <label>516. Roskosch 2015: Reverse engineering of fluid selection for thermodynamic cycles with cubic equations of state, using a compression heat pump as example., Energy, 81, p. 202, DOI: 10.1016/j.energy.2014.12.025</label>
          <listPosition>516</listPosition>
          <doi>10.1016/j.energy.2014.12.025</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182096</mtid>
          <link>/api/reference/61182096</link>
          <label>517. Roskosch 2015: Reverse engineering of fluid selection for ORCs using cubic equations of state.proceedings of the 3rd international seminar on ORC power systems ASME-ORC 2015, Vol. 3, p. 570</label>
          <listPosition>517</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182097</mtid>
          <link>/api/reference/61182097</link>
          <label>518. Cignitti 2017: Integrated working fluid-thermodynamic cycle design of organic Rankine cycle power systems for waste heat recovery., Appl Energy, 203, p. 442, DOI: 10.1016/j.apenergy.2017.06.031</label>
          <listPosition>518</listPosition>
          <doi>10.1016/j.apenergy.2017.06.031</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182098</mtid>
          <link>/api/reference/61182098</link>
          <label>519. Frutiger 2019: Computer-aided molecular product-process design under property uncertainties–A Monte Carlo based optimization strategy., Comput Chem Eng, 122, p. 247, DOI: 10.1016/j.compchemeng.2018.08.021</label>
          <listPosition>519</listPosition>
          <doi>10.1016/j.compchemeng.2018.08.021</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182099</mtid>
          <link>/api/reference/61182099</link>
          <label>520. Stavrou 2023: Simultaneous optimization of process design and solvent in a flowsheet simulator., Chem Ing Tech, 95, p. 391, DOI: 10.1002/cite.202200100</label>
          <listPosition>520</listPosition>
          <doi>10.1002/cite.202200100</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182100</mtid>
          <link>/api/reference/61182100</link>
          <label>521. Neumaier 2023: Refrigerant selection for heat pumps: The compressor makes the difference., Energy Technol, 11, DOI: 10.1002/ente.202201403</label>
          <listPosition>521</listPosition>
          <doi>10.1002/ente.202201403</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182101</mtid>
          <link>/api/reference/61182101</link>
          <label>522. Mayer 2024: Computer-aided molecular refrigerant design for adsorption chillers based on classical density functional theory and PC-SAFT., Comput Chem Eng, DOI: 10.1016/j.compchemeng.2024.108629</label>
          <listPosition>522</listPosition>
          <doi>10.1016/j.compchemeng.2024.108629</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182102</mtid>
          <link>/api/reference/61182102</link>
          <label>523. Wang 2022: On the CAMD method based on PC-SAFT for working fluid design of a high-temperature organic Rankine cycle., Energy</label>
          <listPosition>523</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182103</mtid>
          <link>/api/reference/61182103</link>
          <label>524. White 2019: Simultaneous cycle optimization and fluid selection for ORC systems accounting for the effect of the operating conditions on turbine efficiency., Front Energy Res, 7, p. 50, DOI: 10.3389/fenrg.2019.00050</label>
          <listPosition>524</listPosition>
          <doi>10.3389/fenrg.2019.00050</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182104</mtid>
          <link>/api/reference/61182104</link>
          <label>525. Lemmens 2015: A perspective on costs and cost estimation techniques for Organic Rankine Cycle systems.proceedings of the 3rd international seminar on ORC power systems ASME-ORC 2015, Vol. 3, p. 181</label>
          <listPosition>525</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182105</mtid>
          <link>/api/reference/61182105</link>
          <label>526. Tillmanns 2022: The thermo-economic potential of ORC-based pumped-thermal electricity storage: Insights from the integrated design of processes and working fluids., Energy Technol, 10, DOI: 10.1002/ente.202200182</label>
          <listPosition>526</listPosition>
          <doi>10.1002/ente.202200182</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182106</mtid>
          <link>/api/reference/61182106</link>
          <label>527. Xu 2019: A comprehensive review of organic Rankine cycle waste heat recovery systems in heavy-duty diesel engine applications., Renew Sust Energy Rev, 107, p. 145, DOI: 10.1016/j.rser.2019.03.012</label>
          <listPosition>527</listPosition>
          <doi>10.1016/j.rser.2019.03.012</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182107</mtid>
          <link>/api/reference/61182107</link>
          <label>528. Teichgraeber 2022: Time-series aggregation for the optimization of energy systems: Goals, challenges, approaches, and opportunities., Renew Sust Energy Rev, 157, DOI: 10.1016/j.rser.2021.111984</label>
          <listPosition>528</listPosition>
          <doi>10.1016/j.rser.2021.111984</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182108</mtid>
          <link>/api/reference/61182108</link>
          <label>529. Quoilin 2013: Techno-economic survey of organic Rankine cycle (ORC) systems., Renew Sust Energ Rev, 22, p. 168, DOI: 10.1016/j.rser.2013.01.028</label>
          <listPosition>529</listPosition>
          <doi>10.1016/j.rser.2013.01.028</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182109</mtid>
          <link>/api/reference/61182109</link>
          <label>530. Jiménez-Arreola 2018: Thermal power fluctuations in waste heat to power systems: An overview on the challenges and current solutions., Appl Therm Eng, 134, p. 576, DOI: 10.1016/j.applthermaleng.2018.02.033</label>
          <listPosition>530</listPosition>
          <doi>10.1016/j.applthermaleng.2018.02.033</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182110</mtid>
          <link>/api/reference/61182110</link>
          <label>531. Fritzson 1998: Modelica—A language for equation-based physical modeling and high performance simulation.International workshop on applied parallel computing, p. 149</label>
          <listPosition>531</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182111</mtid>
          <link>/api/reference/61182111</link>
          <label>532. Leineweber 2003: An efficient multiple shooting based reduced SQP strategy for large-scale dynamic process optimization: Part II: Software aspects and applications., Comput Chem Eng, 27, p. 167, DOI: 10.1016/S0098-1354(02)00195-3</label>
          <listPosition>532</listPosition>
          <doi>10.1016/S0098-1354(02)00195-3</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182112</mtid>
          <link>/api/reference/61182112</link>
          <label>533. Li 2022: Comparative investigations on dynamic characteristics of basic ORC and cascaded LTES-ORC under transient heat sources., Appl Therm Eng, 207, DOI: 10.1016/j.applthermaleng.2022.118197</label>
          <listPosition>533</listPosition>
          <doi>10.1016/j.applthermaleng.2022.118197</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182113</mtid>
          <link>/api/reference/61182113</link>
          <label>534. Hernandez 2016: Real-time optimization of organic rankine cycle systems by extremum-seeking control., Energies, 9, DOI: 10.3390/en9050334</label>
          <listPosition>534</listPosition>
          <doi>10.3390/en9050334</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182114</mtid>
          <link>/api/reference/61182114</link>
          <label>535. Lampe 2016: Integrated design of process and working fluids for organic rankine cycles</label>
          <listPosition>535</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182115</mtid>
          <link>/api/reference/61182115</link>
          <label>536. Rehner 2024: Computer-aided mixture design using molecule superstructures.Proceedings of the 10th international conference on foundations of computer aided process design (FOCAPD 2024), Vol. 3, p. 876</label>
          <listPosition>536</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182116</mtid>
          <link>/api/reference/61182116</link>
          <label>537. Gertig 2020: Computer-aided molecular and processes design based on quantum chemistry: current status and future prospects., Curr Opin Chem Eng, 27, p. 89, DOI: 10.1016/j.coche.2019.11.007</label>
          <listPosition>537</listPosition>
          <doi>10.1016/j.coche.2019.11.007</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182117</mtid>
          <link>/api/reference/61182117</link>
          <label>538. Blum 2003: Metaheuristics in combinatorial optimization: Overview and conceptual comparison., ACM Comput Surv (CSUR), 35, p. 268, DOI: 10.1145/937503.937505</label>
          <listPosition>538</listPosition>
          <doi>10.1145/937503.937505</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182118</mtid>
          <link>/api/reference/61182118</link>
          <label>539. Kirkpatrick 1983: Optimization by simulated annealing., Science, 220, p. 671, DOI: 10.1126/science.220.4598.671</label>
          <listPosition>539</listPosition>
          <doi>10.1126/science.220.4598.671</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182119</mtid>
          <link>/api/reference/61182119</link>
          <label>540. Deb 2002: A fast and elitist multiobjective genetic algorithm: NSGA-II., IEEE Trans Evol Comput, 6, p. 182, DOI: 10.1109/4235.996017</label>
          <listPosition>540</listPosition>
          <doi>10.1109/4235.996017</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182120</mtid>
          <link>/api/reference/61182120</link>
          <label>541. Grossmann 1995: Mixed-integer nonlinear programming techniques for process systems engineering., Comput Chem Eng, 19, p. 189, DOI: 10.1016/0098-1354(95)87036-9</label>
          <listPosition>541</listPosition>
          <doi>10.1016/0098-1354(95)87036-9</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182121</mtid>
          <link>/api/reference/61182121</link>
          <label>542. Duran 1986: An outer-approximation algorithm for a class of mixed-integer nonlinear programs., Math Program, 36, p. 307, DOI: 10.1007/BF02592064</label>
          <listPosition>542</listPosition>
          <doi>10.1007/BF02592064</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182122</mtid>
          <link>/api/reference/61182122</link>
          <label>543. Hennen 2017: Multi-objective synthesis of energy systems: Efficient identification of design trade-offs., Comput Chem Eng, 97, p. 283, DOI: 10.1016/j.compchemeng.2016.10.010</label>
          <listPosition>543</listPosition>
          <doi>10.1016/j.compchemeng.2016.10.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182123</mtid>
          <link>/api/reference/61182123</link>
          <label>544. Pardalos 2017: Scalarization.Non-convex multi-objective optimization, p. 13</label>
          <listPosition>544</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182124</mtid>
          <link>/api/reference/61182124</link>
          <label>545. Messac 2003: The normalized normal constraint method for generating the Pareto frontier., Struct Multidiscip Optim, 25, p. 86, DOI: 10.1007/s00158-002-0276-1</label>
          <listPosition>545</listPosition>
          <doi>10.1007/s00158-002-0276-1</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182125</mtid>
          <link>/api/reference/61182125</link>
          <label>546. Haimes 1971: On a bicriterion formulation of the problems of integrated system identification and system optimization., IEEE Trans Syst Man Cybern Syst, 1, p. 296</label>
          <listPosition>546</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182126</mtid>
          <link>/api/reference/61182126</link>
          <label>547. Bortz 2014: Multi-criteria optimization in chemical process design and decision support by navigation on Pareto sets., Comput Chem Eng, 60, p. 354, DOI: 10.1016/j.compchemeng.2013.09.015</label>
          <listPosition>547</listPosition>
          <doi>10.1016/j.compchemeng.2013.09.015</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182127</mtid>
          <link>/api/reference/61182127</link>
          <label>548. Frutiger 2017: Computational chemical product design problems under property uncertainties.27th European symposium on computer-aided process engineering, Vol. 40A, p. 973</label>
          <listPosition>548</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182128</mtid>
          <link>/api/reference/61182128</link>
          <label>549. Groniewsky 2020: Investigation of the effect of the regenerative heat exchanger on the performance of organic Rankine cycles using perturbed chain-statistical associating fluid theory equation of state., Ind Eng Chem Res, 59, p. 19643, DOI: 10.1021/acs.iecr.0c03782</label>
          <listPosition>549</listPosition>
          <doi>10.1021/acs.iecr.0c03782</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182129</mtid>
          <link>/api/reference/61182129</link>
          <label>550. White 2018: A generalised assessment of working fluids and radial turbines for non-recuperated subcritical organic Rankine cycles., Energies, 11, p. 26, DOI: 10.3390/en11040800</label>
          <listPosition>550</listPosition>
          <doi>10.3390/en11040800</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182130</mtid>
          <link>/api/reference/61182130</link>
          <label>551. Andreasen 2017: A comparison of organic and steam rankine cycle power systems for waste heat recovery on large ships., Energies, 10, DOI: 10.3390/en10040547</label>
          <listPosition>551</listPosition>
          <doi>10.3390/en10040547</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182131</mtid>
          <link>/api/reference/61182131</link>
          <label>552. Miró 2016: Thermal energy storage (TES) for industrial waste heat (IWH) recovery: A review., Appl Energy, 179, p. 284, DOI: 10.1016/j.apenergy.2016.06.147</label>
          <listPosition>552</listPosition>
          <doi>10.1016/j.apenergy.2016.06.147</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182132</mtid>
          <link>/api/reference/61182132</link>
          <label>553. Oluleye 2016: Evaluating the potential of process sites for waste heat recovery., Appl Energy, 161, p. 627, DOI: 10.1016/j.apenergy.2015.07.011</label>
          <listPosition>553</listPosition>
          <doi>10.1016/j.apenergy.2015.07.011</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182133</mtid>
          <link>/api/reference/61182133</link>
          <label>554. Hsieh 2017: Design and preliminary results of a 20-kW transcritical organic rankine cycle with a screw expander for low-grade waste heat recovery., Appl Therm Eng, 110, p. 1120, DOI: 10.1016/j.applthermaleng.2016.09.047</label>
          <listPosition>554</listPosition>
          <doi>10.1016/j.applthermaleng.2016.09.047</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182134</mtid>
          <link>/api/reference/61182134</link>
          <label>555. Hemprich 2024: Modeling dipolar molecules with PCP-SAFT: A vector group-contribution method., ACS omega, DOI: 10.1021/acsomega.4c04867</label>
          <listPosition>555</listPosition>
          <doi>10.1021/acsomega.4c04867</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182135</mtid>
          <link>/api/reference/61182135</link>
          <label>556. Ten 2016: A novel chemical product design framework with the integration of safety and health aspects., J Loss Prev Process Ind, 40, p. 67, DOI: 10.1016/j.jlp.2015.11.027</label>
          <listPosition>556</listPosition>
          <doi>10.1016/j.jlp.2015.11.027</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182136</mtid>
          <link>/api/reference/61182136</link>
          <label>557. Hukkerikar 2012: Estimation of environment-related properties of chemicals for design of sustainable processes: Development of group-contribution+ (GC+) property models and uncertainty analysis., J Chem Inf Model, 52, p. 2823, DOI: 10.1021/ci300350r</label>
          <listPosition>557</listPosition>
          <doi>10.1021/ci300350r</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182137</mtid>
          <link>/api/reference/61182137</link>
          <label>558. Jung 2015: Technological perspectives of silicone heat transfer fluids for concentrated solar power., Energy Procedia, 69, p. 663, DOI: 10.1016/j.egypro.2015.03.076</label>
          <listPosition>558</listPosition>
          <doi>10.1016/j.egypro.2015.03.076</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182138</mtid>
          <link>/api/reference/61182138</link>
          <label>559. Roetzel 2010: C1 thermal design of heat exchangers., VDI Heat Atlas, p. 33</label>
          <listPosition>559</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182139</mtid>
          <link>/api/reference/61182139</link>
          <label>560. Persico 2017: 8 - fluid dynamic design of organic rankine cycle turbines.Organic rankine cycle (ORC) power systems, p. 253</label>
          <listPosition>560</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182140</mtid>
          <link>/api/reference/61182140</link>
          <label>561. Giuffre’ A, Ascione F, Servi CD, Pini M. Data Driven Modeling of High-Speed Centrifugal Compressors for Aircraft Environmental Control System. In: Proceedings of global power and propulsion society conference, chania, Greece. 2022., DOI: 10.1016/j.ijrefrig.2023.03.019</label>
          <listPosition>561</listPosition>
          <doi>10.1016/j.ijrefrig.2023.03.019</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182141</mtid>
          <link>/api/reference/61182141</link>
          <label>562. Astolfi 2014: Binary ORC (organic Rankine cycles) power plants for the exploitation of medium–low temperature geothermal sources – Part B: Techno-economic optimization., Energy, 66, p. 435, DOI: 10.1016/j.energy.2013.11.057</label>
          <listPosition>562</listPosition>
          <doi>10.1016/j.energy.2013.11.057</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182142</mtid>
          <link>/api/reference/61182142</link>
          <label>563. Pierobon 2014: Design methodology for flexible energy conversion systems accounting for dynamic performance., Energy, 68, p. 667, DOI: 10.1016/j.energy.2014.03.010</label>
          <listPosition>563</listPosition>
          <doi>10.1016/j.energy.2014.03.010</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182143</mtid>
          <link>/api/reference/61182143</link>
          <label>564. Bongartz 2018: MAiNGO: McCormick based algorithm for mixed integer nonlinear global optimizationp. 1</label>
          <listPosition>564</listPosition>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182144</mtid>
          <link>/api/reference/61182144</link>
          <label>565. Bongartz 2019: Deterministic global flowsheet optimization: Between equation-oriented and sequential-modular methods., AIChE J, 65, p. 1022, DOI: 10.1002/aic.16507</label>
          <listPosition>565</listPosition>
          <doi>10.1002/aic.16507</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182145</mtid>
          <link>/api/reference/61182145</link>
          <label>566. Schweidtmann 2019: Deterministic global optimization with artificial neural networks embedded., J Optim Theory Appl, 180, p. 925, DOI: 10.1007/s10957-018-1396-0</label>
          <listPosition>566</listPosition>
          <doi>10.1007/s10957-018-1396-0</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182146</mtid>
          <link>/api/reference/61182146</link>
          <label>567. Romeo 2011: Reducing energy penalties in carbon capture with organic Rankine cycles., Appl Therm Eng, 31, p. 2928, DOI: 10.1016/j.applthermaleng.2011.05.022</label>
          <listPosition>567</listPosition>
          <doi>10.1016/j.applthermaleng.2011.05.022</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182147</mtid>
          <link>/api/reference/61182147</link>
          <label>568. DiGenova 2013: Method for customizing an organic Rankine cycle to a complex heat source for efficient energy conversion, demonstrated on a Fischer Tropsch plant., Appl Energy, 102, p. 746, DOI: 10.1016/j.apenergy.2012.08.029</label>
          <listPosition>568</listPosition>
          <doi>10.1016/j.apenergy.2012.08.029</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
        <reference>
          <otype>Reference</otype>
          <mtid>61182148</mtid>
          <link>/api/reference/61182148</link>
          <label>569. Lasdon 1978: Design and testing of a generalized reduced gradient code for nonlinear programming., ACM Trans Math Softw, 4, p. 34, DOI: 10.1145/355769.355773</label>
          <listPosition>569</listPosition>
          <doi>10.1145/355769.355773</doi>
          <published>false</published>
          <snippet>true</snippet>
        </reference>
      </references>
      <link>/api/publication/35662917</link>
      <label>Markides Christos N. et al. Working fluid and system optimisation of organic Rankine cycles via computer-aided molecular design: A review. (2025) PROGRESS IN ENERGY AND COMBUSTION SCIENCE 0360-1285 1873-216X 107</label><template>&lt;div class=&quot;JournalArticle Publication short-list&quot;&gt; &lt;div class=&quot;authors&quot;&gt; &lt;span class=&quot;author-name&quot; &gt; Markides, Christos N. &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Bardow, André &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; De Paepe, Michel &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; De Servi, Carlo &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Groß, Joachim &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Haslam, Andrew J. &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Lecompte, Steven &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Papadopoulos, Athanasios I. &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Oyewunmi, Oyeniyi A. &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; ; &lt;span class=&quot;author-name&quot; &gt; Seferlis, Panos &lt;/span&gt; &lt;span class=&quot;author-type&quot;&gt; &lt;/span&gt; et al. &lt;/div &gt;&lt;div class=&quot;title&quot;&gt;&lt;a href=&quot;/gui2/?mode=browse&amp;params=publication;35662917&quot; mtid=&quot;35662917&quot; target=&quot;_blank&quot;&gt;Working fluid and system optimisation of organic Rankine cycles via computer-aided molecular design: A review&lt;/a&gt;&lt;/div&gt; &lt;div class=&quot;pub-info&quot;&gt; &lt;span class=&quot;journal-title&quot;&gt;PROGRESS IN ENERGY AND COMBUSTION SCIENCE&lt;/span&gt; &lt;span class=&quot;journal-volume&quot;&gt;107&lt;/span&gt; &lt;span class=&quot;page&quot;&gt; Paper: 101201 &lt;/span&gt; &lt;span class=&quot;year&quot;&gt;(2025)&lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;pub-end&quot;&gt;&lt;div class=&quot;identifier-list&quot;&gt; &lt;span class=&quot;identifiers&quot;&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;10.1016/j.pecs.2024.101201&quot; target=&quot;_blank&quot; href=&quot;https://doi.org/10.1016/j.pecs.2024.101201&quot;&gt; DOI &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;001409311500001&quot; target=&quot;_blank&quot; href=&quot;https://www.webofscience.com/wos/woscc/full-record/001409311500001&quot;&gt; WoS &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;85211072317&quot; target=&quot;_blank&quot; href=&quot;http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85211072317&quot;&gt; Scopus &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:black&quot; title=&quot;https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595&quot; target=&quot;_blank&quot; href=&quot;https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595&quot;&gt; Egyéb URL &lt;/a&gt; &lt;/span&gt; &lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;short-pub-prop-list&quot;&gt; &lt;span class=&quot;short-pub-mtid&quot;&gt; Közlemény:35662917 &lt;/span&gt; &lt;span class=&quot;status-holder&quot;&gt;&lt;span class=&quot;status-data status-VALIDATED&quot;&gt; Egyeztetett &lt;/span&gt;&lt;/span&gt; &lt;span class=&quot;pub-core&quot;&gt; Idéző &lt;/span&gt; &lt;span class=&quot;pub-type&quot;&gt;Folyóiratcikk (Összefoglaló cikk ) &lt;/span&gt; &lt;!-- &amp;&amp; !record.category.scientific --&gt; &lt;span class=&quot;pub-category&quot;&gt;Tudományos&lt;/span&gt; &lt;/div&gt; &lt;/div&gt; &lt;/div&gt;</template><template2>&lt;div class=&quot;JournalArticle Publication long-list&quot;&gt; &lt;div class=&quot;authors&quot;&gt; &lt;img title=&quot;Idézőközlemény&quot; style=&quot;float: left&quot; src=&quot;/frontend/resources/grid/publication-citation-icon.png&quot;&gt; &lt;div class=&quot;autype autype0&quot;&gt; &lt;span class=&quot;author-name&quot; &gt;Markides Christos N. &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Bardow André &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;De Paepe Michel &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;De Servi Carlo &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Groß Joachim &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Haslam Andrew J. &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Lecompte Steven &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Papadopoulos Athanasios I. &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Oyewunmi Oyeniyi A. &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Seferlis Panos &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Schilling Johannes &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Linke Patrick &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Tian Hua &lt;/span&gt; ;&amp;nbsp;&amp;nbsp;&amp;nbsp; &lt;span class=&quot;author-name&quot; &gt;Shu Gequn &lt;/span&gt; &lt;/div&gt; &lt;/div&gt; &lt;div class=&quot;title&quot;&gt;&lt;a href=&quot;/gui2/?mode=browse&amp;params=publication;35662917&quot; target=&quot;_blank&quot;&gt;Working fluid and system optimisation of organic Rankine cycles via computer-aided molecular design: A review&lt;/a&gt;&lt;/div&gt; &lt;div&gt; &lt;span class=&quot;journal-title&quot;&gt;PROGRESS IN ENERGY AND COMBUSTION SCIENCE&lt;/span&gt; &lt;span class=&quot;journal-issn&quot;&gt;(&lt;a target=&quot;_blank&quot; href=&quot;https://portal.issn.org/resource/ISSN/0360-1285&quot;&gt;0360-1285&lt;/a&gt; &lt;a target=&quot;_blank&quot; href=&quot;https://portal.issn.org/resource/ISSN/1873-216X&quot;&gt;1873-216X&lt;/a&gt;)&lt;/span&gt;: &lt;span class=&quot;journal-volume&quot;&gt;107&lt;/span&gt; &lt;span class=&quot;page&quot;&gt; Paper 101201. &lt;/span&gt; &lt;span class=&quot;year&quot;&gt;(2025)&lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;pub-footer&quot;&gt;  &lt;span class=&quot;language&quot; xmlns=&quot;http://www.w3.org/1999/html&quot;&gt;Nyelv: Angol | &lt;/span&gt; &lt;span class=&quot;identifiers&quot;&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;10.1016/j.pecs.2024.101201&quot; target=&quot;_blank&quot; href=&quot;https://doi.org/10.1016/j.pecs.2024.101201&quot;&gt; DOI &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;001409311500001&quot; target=&quot;_blank&quot; href=&quot;https://www.webofscience.com/wos/woscc/full-record/001409311500001&quot;&gt; WoS &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:blue&quot; title=&quot;85211072317&quot; target=&quot;_blank&quot; href=&quot;http://www.scopus.com/record/display.url?origin=inward&amp;eid=2-s2.0-85211072317&quot;&gt; Scopus &lt;/a&gt; &lt;/span&gt; &lt;span class=&quot;id identifier oa_none&quot; title=&quot;none&quot;&gt; &lt;a style=&quot;color:black&quot; title=&quot;https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595&quot; target=&quot;_blank&quot; href=&quot;https://linkinghub.elsevier.com/retrieve/pii/S0360128524000595&quot;&gt; Egyéb URL &lt;/a&gt; &lt;/span&gt; &lt;/span&gt; &lt;div class=&quot;publication-citation&quot;&gt; &lt;a target=&quot;_blank&quot; href=&quot;/api/publication?cond=citations.related;eq;35662917&amp;sort=publishedYear,desc&amp;sort=title&quot;&gt; Idézett közlemények száma: 6 &lt;/a&gt; &lt;/div&gt; &lt;div class=&quot;mtid&quot;&gt;&lt;span class=&quot;long-pub-mtid&quot;&gt;Közlemény: 35662917&lt;/span&gt; | &lt;span class=&quot;status-data status-VALIDATED&quot;&gt; Egyeztetett &lt;/span&gt; Idéző | &lt;span class=&quot;type-subtype&quot;&gt;Folyóiratcikk ( Összefoglaló cikk ) &lt;/span&gt; | &lt;span class=&quot;pub-category&quot;&gt;Tudományos&lt;/span&gt; | &lt;span class=&quot;publication-sourceOfData&quot;&gt;kézi felvitel&lt;/span&gt; &lt;/div&gt; &lt;div class=&quot;lastModified&quot;&gt;Utolsó módosítás: 2026.06.01. 17:29 Pécsi Éva (MTMT Közp 2,3, admin) &lt;/div&gt; &lt;/div&gt;&lt;/div&gt;</template2>
    </publication>
  </content>
</myciteResult>
