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Cited 24 time in webofscience Cited 31 time in scopus
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Developing anisotropic yield models of polycrystalline tantalum using crystal plasticity finite element simulations

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dc.contributor.authorLim, Hojun-
dc.contributor.authorBong, Hyuk Jong-
dc.contributor.authorChen, Shuh Rong-
dc.contributor.authorRodgers, Theron M.-
dc.contributor.authorBattaile, Corbett C.-
dc.contributor.authorLane, J. Matthew D.-
dc.date.accessioned2025-03-21T08:30:13Z-
dc.date.available2025-03-21T08:30:13Z-
dc.date.issued2018-07-
dc.identifier.issn0921-5093-
dc.identifier.issn1873-4936-
dc.identifier.urihttps://scholarworks.gnu.ac.kr/handle/sw.gnu/77514-
dc.description.abstractIn this work, plastic anisotropy of polycrystalline tantalum is characterized by meso-scale crystal plasticity-finite element (CP-FE) simulations. Initial texture and grain morphology determined from electron backscatter diffraction (EBSD) measurements were incorporated into a three dimensional polycrystalline microstructure generated by grain growth simulations using kinetic Monte Carlo (kMC) Potts model. CP-FE simulations using such a polycrystalline representative volume element accurately capture anisotropic mechanical behaviors of polycrystalline tantalum. Furthermore, the CP-FE simulations are used to parameterize the classic Hill's anisotropic yield function, which is then employed in dynamic finite element simulations of Taylor impact tests. The predicted impacted cylinder shape agrees well with experimental observation, particularly in regard to anisotropic behavior. This work demonstrates a direct link between grain scale microstructural features and anisotropic mechanical behaviors of polycrystalline metals.-
dc.format.extent7-
dc.language영어-
dc.language.isoENG-
dc.publisherElsevier BV-
dc.titleDeveloping anisotropic yield models of polycrystalline tantalum using crystal plasticity finite element simulations-
dc.typeArticle-
dc.publisher.location스위스-
dc.identifier.doi10.1016/j.msea.2018.05.096-
dc.identifier.scopusid2-s2.0-85048465629-
dc.identifier.wosid000440118900007-
dc.identifier.bibliographicCitationMaterials Science and Engineering: A, v.730, pp 50 - 56-
dc.citation.titleMaterials Science and Engineering: A-
dc.citation.volume730-
dc.citation.startPage50-
dc.citation.endPage56-
dc.type.docTypeArticle-
dc.description.isOpenAccessN-
dc.description.journalRegisteredClasssci-
dc.description.journalRegisteredClassscie-
dc.description.journalRegisteredClassscopus-
dc.relation.journalResearchAreaScience & Technology - Other Topics-
dc.relation.journalResearchAreaMaterials Science-
dc.relation.journalResearchAreaMetallurgy & Metallurgical Engineering-
dc.relation.journalWebOfScienceCategoryNanoscience & Nanotechnology-
dc.relation.journalWebOfScienceCategoryMaterials Science, Multidisciplinary-
dc.relation.journalWebOfScienceCategoryMetallurgy & Metallurgical Engineering-
dc.subject.keywordPlusSTRAIN-RATE DEPENDENCE-
dc.subject.keywordPlusCENTERED-CUBIC METALS-
dc.subject.keywordPlusFLOW-STRESS-
dc.subject.keywordPlusMICROSTRUCTURAL EVOLUTION-
dc.subject.keywordPlusSINGLE-CRYSTALS-
dc.subject.keywordPlusTEMPERATURE-
dc.subject.keywordPlusDEFORMATION-
dc.subject.keywordPlusVARIABILITY-
dc.subject.keywordPlusCREEP-
dc.subject.keywordAuthorCrystal plasticity-
dc.subject.keywordAuthorTantalum-
dc.subject.keywordAuthorAnisotropy-
dc.subject.keywordAuthorTaylor impact-
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