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High strain rate tensile behavior of a quenching and partitioning (Q&P) Fe-0.25C-1.5Si-3.0Mn steel

Xia Peikang; Vercruysse Florian; Petrov Roumen; Sabirov Ilchat; Castillo-Rodríguez Miguel; Verleysen Patricia


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  <identifier identifierType="DOI">10.5281/zenodo.2326130</identifier>
  <creators>
    <creator>
      <creatorName>Xia Peikang</creatorName>
      <affiliation>IMDEA Materials Institute, Calle Eric Kandel 2, Getafe, 28906 Madrid, Spain</affiliation>
    </creator>
    <creator>
      <creatorName>Vercruysse Florian</creatorName>
      <affiliation>Department of Electrical Energy, Metals, Mechanical constructions &amp; Systems, Research group Materials Science and Technology, Ghent University, Technologiepark 903, 9052 Gent, Belgium</affiliation>
    </creator>
    <creator>
      <creatorName>Petrov Roumen</creatorName>
      <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0003-0551-9058</nameIdentifier>
    </creator>
    <creator>
      <creatorName>Sabirov Ilchat</creatorName>
      <nameIdentifier nameIdentifierScheme="ORCID" schemeURI="http://orcid.org/">0000-0001-5211-6054</nameIdentifier>
    </creator>
    <creator>
      <creatorName>Castillo-Rodríguez Miguel</creatorName>
      <affiliation>IMDEA Materials Institute, Calle Eric Kandel 2, Getafe, 28906 Madrid, Spain</affiliation>
    </creator>
    <creator>
      <creatorName>Verleysen Patricia</creatorName>
      <affiliation>Department of Electrical Energy, Metals, Mechanical constructions &amp; Systems, Research group Materials Science and Technology, Ghent University, Technologiepark 903, 9052 Gent, Belgium</affiliation>
    </creator>
  </creators>
  <titles>
    <title>High strain rate tensile behavior of a quenching and partitioning (Q&amp;P) Fe-0.25C-1.5Si-3.0Mn steel</title>
  </titles>
  <publisher>Zenodo</publisher>
  <publicationYear>2018</publicationYear>
  <subjects>
    <subject>Advanced high strength steel; Quenching and partitioning, High strain rate; Split Hopkinson tensile bar; Digital image correlation</subject>
  </subjects>
  <dates>
    <date dateType="Issued">2018-09-19</date>
  </dates>
  <resourceType resourceTypeGeneral="Text">Journal article</resourceType>
  <alternateIdentifiers>
    <alternateIdentifier alternateIdentifierType="url">https://zenodo.org/record/2326130</alternateIdentifier>
  </alternateIdentifiers>
  <relatedIdentifiers>
    <relatedIdentifier relatedIdentifierType="DOI" relationType="IsVersionOf">10.5281/zenodo.1421753</relatedIdentifier>
  </relatedIdentifiers>
  <rightsList>
    <rights rightsURI="https://creativecommons.org/licenses/by/4.0/legalcode">Creative Commons Attribution 4.0 International</rights>
    <rights rightsURI="info:eu-repo/semantics/openAccess">Open Access</rights>
  </rightsList>
  <descriptions>
    <description descriptionType="Abstract">&lt;p&gt;The mechanical behavior and microstructural evolution of a quenched and partitioned (Q&amp;amp;P) Fe-0.25C-1.5Si-3.0Mn (wt. %) steel were investigated in a wide range of strain rates (10&lt;sup&gt;-4&lt;/sup&gt;&amp;ndash;10&lt;sup&gt;3&lt;/sup&gt; s&lt;sup&gt;-1&lt;/sup&gt;). The static tensile tests (10&lt;sup&gt;-4&lt;/sup&gt; and 10&lt;sup&gt;-2&lt;/sup&gt; s&lt;sup&gt;-1&lt;/sup&gt;) were conducted using a universal testing machine, while high strain rate tests (500&amp;ndash;1000 s&lt;sup&gt;-1&lt;/sup&gt;) were carried out on a split Hopkinson tensile bar system. High speed camera imaging combined with the digital image correlation (DIC) technique were employed to study homogeneity of plastic deformation. Electron backscatter diffraction (EBSD) and scanning electron microscopy were used to characterize the microstructure evolution in the deformed zone and the fracture surface, respectively. The results indicate that the yield strength&lt;/p&gt;</description>
  </descriptions>
</resource>
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