Characterization of Mechanical Properties, Macroscopic Deformation Behavior, and Microstructure of Functionally Graded 22MnB5 Steel

dc.date.accessioned2021-08-30T14:42:34Z
dc.date.available2021-08-30T14:42:34Z
dc.date.issued2021-03-24
dc.description.sponsorshipGefördert im Rahmen des Projekts DEALger
dc.identifierdoi:10.17170/kobra-202107214392
dc.identifier.urihttp://hdl.handle.net/123456789/13185
dc.language.isoengeng
dc.relation.doidoi:10.1002/srin.202000633
dc.rightsNamensnennung 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectdigital image correlationeng
dc.subjectfunctional gradationeng
dc.subjectlogarithmic straineng
dc.subjectmicrostructureseng
dc.subjectthermomechanical processingeng
dc.subject.ddc600
dc.subject.swdBildkorrelationger
dc.subject.swdPlastische Deformationger
dc.subject.swdMikrostrukturger
dc.subject.swdThermomechanische Behandlungger
dc.subject.swdBelastung <Mechanik>ger
dc.titleCharacterization of Mechanical Properties, Macroscopic Deformation Behavior, and Microstructure of Functionally Graded 22MnB5 Steeleng
dc.typeAufsatz
dc.type.versionpublishedVersion
dcterms.abstractThe focus of this study is on the characterization of the local plastic deformation and failure of functionally graded 22MnB5 plates after hot stamping using an in situ approach. Various forming strategies at elevated temperatures are performed using differentially tempered forming tools to locally tailor the microstructure. By controlling the cooling rate, graded as well as martensitic and ferritic–pearlitic microstructures are obtained. Experimental analysis includes evaluation of the material- and geometry-dependent local strain evolution by tensile tests coupled with digital image correlation conducted on two different sample geometries, tapered and nontapered. Experimental results reveal a much more complex deformation behavior for the functionally graded than for homogenous samples. As expected, the distribution of plastic strain of the graded sample is depending on the mixture of its constituting microstructures; however, different types of localized failure after necking are found. Obviously, failure evolution also depends on the sample geometry. Failure patterns observed include shear bands, crossed bands, or homogenous localization of strain, i.e., traditional necking. Eventually, in the case of the nontapered geometry, a lower level of local plastic strain with multiple necking sites is observed. Based on findings presented, detailed process-microstructure-property-damage relationships are established.eng
dcterms.accessRightsopen access
dcterms.creatorScharifi, Emad
dcterms.creatorSchade, Thomas
dcterms.creatorAdemaj, Agim
dcterms.creatorSajadifar, Seyed Vahid
dcterms.creatorWeidig, Ursula
dcterms.creatorNiendorf, Thomas
dcterms.creatorSteinhoff, Kurt
dcterms.source.identifiereissn:1869-344X
dcterms.source.issueIssue 7
dcterms.source.journalsteel research internationaleng
dcterms.source.volumeVolume 92
kup.iskupfalse

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