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dc.contributor.author
 hal.structure.identifier
MAREAU, Charles
206863 Laboratoire des Arts et Métiers ParisTech d'Angers - Procédés Matériaux Durabilité [LAMPA - PMD]
dc.contributor.author
 hal.structure.identifier
DAYMOND, Mark R
3557 Queen's University [Kingston, Canada]
dc.date.accessioned2016
dc.date.available2017
dc.date.issued2016
dc.date.submitted2016
dc.identifier.issn0749-6419
dc.identifier.urihttp://hdl.handle.net/10985/11142
dc.description.abstractIn this work, a crystal plasticity constitutive model is proposed to describe the mechanical behavior of metallic materials for which twinning plays a significant role in the deformation process. Constitutive relations are obtained from a micromechanical approach that explicitly considers the interactions between twinned and untwinned domains. Then, based on a thermodynamical analysis of the problem, a new expression for the driving force for the expansion of twinned domains is proposed. Finally, to account for the polycrystalline nature of metallic materials, the constitutive model is implemented in a FFT spectral solver. In the second part of this paper, the model is used to study the mechanical behavior of a AZ31 magnesium alloy under compression, for which a significant amount of experimental data is available in the literature. The comparison between numerical and experimental data allows for discussion of the influence of the different deformation modes on the development of both crystallographic texture and lattice strains. The evolution of lattice strains is found to be largely influenced by the internal stress redistribution process associated with the expansion of twinned domains. Also, the polycrystalline plasticity model provides a correct description of how the morphological texture is strongly altered during the deformation process due to the important activity of twinning systems.
dc.description.sponsorshipThe authors wish to thank Bjørn Clausen from LANSCE-LC for providing the experimental dataset for magnesium. This work was financed by Nu-Tech Precision metals, NSERC, COG, and OPG under the Industrial Research Chair program in Nuclear Materials at Queen's University.
dc.language.isoen
dc.publisherElsevier
dc.rightsPost-print
dc.subjectmicrostructures
dc.subjecttwinning
dc.subjectpolycrystalline material
dc.subjectcrystal plasticity
dc.subjectFFT method
dc.titleMicromechanical modelling of twinning in polycrystalline materials: Application to magnesium
ensam.embargo.terms2018-10-01
dc.identifier.doi10.1016/j.ijplas.2016.07.007
dc.typdocArticle dans une revue avec comité de lecture
dc.localisationCentre de Angers
dc.subject.halSciences de l'ingénieur: Mécanique: Mécanique des matériaux
ensam.audienceInternationale
ensam.page156-171
ensam.journalInternational Journal of Plasticity
ensam.volume85
ensam.peerReviewingOui
hal.identifierhal-02486161
hal.version1
hal.date.transferred2020-02-20T15:44:34Z
hal.submission.permittedtrue
hal.statusaccept


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