On the effect of energy input on microstructure evolution and mechanical properties of laser beam powder bed fusion processed Ti-27Nb-6Ta biomedical alloy

dc.date.accessioned2024-11-06T10:30:13Z
dc.date.available2024-11-06T10:30:13Z
dc.date.issued2024-10-09
dc.description.sponsorshipGefördert im Rahmen des Projekts DEALger
dc.identifierdoi:10.17170/kobra-2024103111046
dc.identifier.urihttp://hdl.handle.net/123456789/16139
dc.language.isoeng
dc.relation.doidoi:10.1016/j.msea.2024.147363
dc.rightsNamensnennung 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectadditive manufacturingeng
dc.subjectpre-alloyed powdereng
dc.subjectEIGAeng
dc.subjectrefractory metalseng
dc.subjectmicrostructure designeng
dc.subjectsynchrotron diffractioneng
dc.subject.ddc600
dc.subject.swdRapid Prototyping <Fertigung>ger
dc.subject.swdMetallpulverger
dc.subject.swdLegierungger
dc.subject.swdMikrostrukturger
dc.subject.swdSelektives Laserschmelzenger
dc.subject.swdBeugungger
dc.subject.swdMechanische Eigenschaftger
dc.subject.swdHochschmelzendes Metallger
dc.titleOn the effect of energy input on microstructure evolution and mechanical properties of laser beam powder bed fusion processed Ti-27Nb-6Ta biomedical alloyeng
dc.typeAufsatz
dc.type.versionpublishedVersion
dcterms.abstractAdditive manufacturing of pre-alloyed Ti-27Nb-6Ta powder by laser beam powder bed fusion (PBF-LB/M) employing a wide range of processing parameters is reported. An in-depth microstructure analysis along the whole process chain from powder feedstock material to additively manufactured bulk structures was conducted employing scanning electron microscopy (SEM) as well as X-ray and high-energy synchrotron diffraction. It is shown that near-fully dense parts (≥99.96 %) with β+α’’ dual-phase microstructure and very homogenous element distribution are obtained in a large process window. In particular, a considerable influence of the energy input during PBF-LB/M on the solidification microstructure, i.e. phase composition and texture, is found. With increasing energy per unit area (EA) both an increase in the volume fraction of the bcc β-phase and more pronounced texture components are seen. Furthermore, the mechanical behavior was evaluated under monotonic tensile loading. The PBF-LB/M processed Ti-27Nb-6Ta structures feature good mechanical properties with ultimate tensile strength (UTS) and strain to failure values of up to 768 MPa and 33.8 %, respectively. Due to the strong impact of the energy input during additive manufacturing on the microstructure evolution, however, an inverse strength-ductility behavior is observed. While UTS clearly decreases with increasing EA values, strain to failure increases at the same time. The underlying relationships between processing (energy input), microstructure and mechanical properties are explored and rationalized.eng
dcterms.accessRightsopen access
dcterms.creatorLauhoff, Christian
dcterms.creatorJohannsen, Jan
dcterms.creatorBolender, Artjom
dcterms.creatorEngelhardt, Anna
dcterms.creatorStenzel, Melanie
dcterms.creatorWeinmann, Markus
dcterms.creatorNiendorf, Thomas
dcterms.source.articlenumber147363
dcterms.source.identifiereissn:1873-4936
dcterms.source.journalMaterials Science and Engineering Aeng
dcterms.source.volumeVolume 918
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