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dc.contributor.authorHama, Takayukien
dc.contributor.authorSuzuki, Tomotakaen
dc.contributor.authorHatakeyama, Shinichien
dc.contributor.authorFujimoto, Hitoshien
dc.contributor.authorTakuda, Hirohikoen
dc.contributor.alternative濵, 孝之ja
dc.contributor.alternative鈴木, 智貴ja
dc.contributor.alternative畠山, 真一ja
dc.contributor.alternative藤本, 仁ja
dc.contributor.alternative宅田, 裕彦ja
dc.date.accessioned2018-12-20T06:14:19Z-
dc.date.available2018-12-20T06:14:19Z-
dc.date.issued2018-05-16-
dc.identifier.issn0921-5093-
dc.identifier.urihttp://hdl.handle.net/2433/235738-
dc.description.abstractReverse loading from compression to tension was performed on a rolled AZ31 magnesium alloy sheet to systematically study the effects of twinning and detwinning on the stress and strain behaviors after stress reversal. A crystal plasticity finite-element simulation was also conducted to study the underlying deformation mechanisms. This paper consists of the following three findings. (1) A sigmoidal curve occurred irrespective of compressive strain, while the sigmoidal curve became less pronounced as the compressive strain increased. The simulation results showed that the shift from detwinning-dominated to slip-dominated deformation became more gradual as the compressive strain increased; thus, the sigmoidal curve became less pronounced. (2) The yield stress after stress reversal increased when the sheet was annealed prior to reverse loading. The simulation results suggested that one of the mechanisms was that the residual stresses generated during compression acted as back stresses to detwinning activity; thus, the yield stress was increased by removing the residual stresses by annealing. (3) The Lankford value after stress reversal was relatively small and further decreased during the first work-hardening stage, whereas it increased during the second stage. The simulation results indicated that the thickness strain was composed of both slip and detwinning activities in the first stage, while only slip activity contributed toward the thickness strain in the second stage, which resulted in the difference in the evolution of the Lankford value between the first and second stages.en
dc.format.mimetypeapplication/pdf-
dc.language.isoeng-
dc.publisherElsevier BVen
dc.rights© 2018. This manuscript version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/en
dc.rightsThe full-text file will be made open to the public on 16 May 2020 in accordance with publisher's 'Terms and Conditions for Self-Archiving'en
dc.rightsこの論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。ja
dc.rightsThis is not the published version. Please cite only the published version.en
dc.subjectMagnesium alloy sheeten
dc.subjectTwinningen
dc.subjectDetwinningen
dc.subjectReverse loadingen
dc.subjectCrystal plasticity finite-element analysisen
dc.subjectLankford valueen
dc.titleRole of twinning on the stress and strain behaviors during reverse loading in rolled magnesium alloy sheetsen
dc.typejournal article-
dc.type.niitypeJournal Article-
dc.identifier.ncidAA10720420-
dc.identifier.jtitleMaterials Science and Engineering: Aen
dc.identifier.volume725-
dc.identifier.spage8-
dc.identifier.epage18-
dc.relation.doi10.1016/j.msea.2018.03.124-
dc.textversionauthor-
dc.addressDepartment of Energy Science and Technology, Kyoto Universityen
dc.addressDepartment of Energy Science and Technology, Kyoto Universityen
dc.addressDepartment of Energy Science and Technology, Kyoto Universityen
dc.addressDepartment of Energy Science and Technology, Kyoto Universityen
dc.addressDepartment of Energy Science and Technology, Kyoto Universityen
dcterms.accessRightsopen access-
datacite.date.available2020-05-16-
datacite.awardNumber17H03428-
datacite.awardNumber17K06858-
dc.identifier.pissn0921-5093-
jpcoar.funderName日本学術振興会ja
jpcoar.funderName日本学術振興会ja
jpcoar.funderName.alternativeJapan Society for the Promotion of Science (JSPS)en
jpcoar.funderName.alternativeJapan Society for the Promotion of Science (JSPS)en
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