Dataset Open Access
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<foaf:name>Altstadt, Eberhard</foaf:name>
<foaf:givenName>Eberhard</foaf:givenName>
<foaf:familyName>Altstadt</foaf:familyName>
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<dct:title>Data publication: Estimation of the yield strength from small punch testing</dct:title>
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<dct:issued rdf:datatype="http://www.w3.org/2001/XMLSchema#gYear">2023</dct:issued>
<dcat:keyword>small punch test</dcat:keyword>
<dcat:keyword>yield strength</dcat:keyword>
<dcat:keyword>empirical correlation</dcat:keyword>
<dcat:keyword>finite element simulation</dcat:keyword>
<dcat:keyword>plate theory</dcat:keyword>
<dct:issued rdf:datatype="http://www.w3.org/2001/XMLSchema#date">2023-10-06</dct:issued>
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<dct:description><p>Finite element simulations of the small punch test are performed.Generic elastic-plastic material properties are used. A systematic variation of the yield stress, ultimate tensile stress and uniform elongation is performed to investigate the effects of these parameters of the uniaxial stress-strain curve on the characteristics of small punch force-deflection curves. Moreover, the effect of sample thickness is studied. It is shown that the currently used elastic-plastic transition force &ndash; obtained by bi-linear fitting &ndash; does not only depend on the yield strength but also on the work hardening behavior of the material. An alternative definition of the elastic-plastic transition force is proposed, which significantly less depends on the work hardening of the material. The approach is based on the deviation of the force-deflection curve from the analytical elastic slope derived by Reissner&#39;s plate theory. The new definition of the transition force leads to significantly reduced dependence of the correlation factor on the geometry of the small punch set-up.</p></dct:description>
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