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 hal.structure.identifier
RABAHALLAH, Meziane
239210 Laboratoire des Propriétés Mécaniques et Thermodynamiques des Matériaux [LPMTM]
dc.contributor.author
 hal.structure.identifier
BOUVIER, Salima
239210 Laboratoire des Propriétés Mécaniques et Thermodynamiques des Matériaux [LPMTM]
dc.contributor.author
 hal.structure.identifier
BACROIX, Brigitte
239210 Laboratoire des Propriétés Mécaniques et Thermodynamiques des Matériaux [LPMTM]
dc.contributor.author
 hal.structure.identifier
BALAN, Tudor
178323 Laboratoire d'Etude des Microstructures et de Mécanique des Matériaux [LEM3]
dc.date.accessioned2015
dc.date.available2015
dc.date.issued2009
dc.date.submitted2015
dc.identifier.issn0921-5093
dc.identifier.urihttp://hdl.handle.net/10985/9907
dc.description.abstractFor numerical simulation of sheet metal forming, more and more advanced phenomenological functions are used to model the anisotropic yielding. The latter can be described by an adjustment of the coefficients of the yield function or the strain rate potential to the polycrystalline yield surface determined using crystal plasticity and X-ray measurements. Several strain rate potentials were examined by the present authors and compared in order to analyse their ability to model the anisotropic behaviour of materials using the methods described above to determine the material parameters. Following that, a specific elastic-plastic time integration scheme was developed and the strain rate potentials were implemented in the FE code. Comparison of the previously investigated potentials is continued in this paper in terms of numerical predictions of cup drawing, for different bcc and fcc materials. The identification procedure is shown to have an important impact on the accuracy of the FE predictions.
dc.language.isoen
dc.publisherElsevier
dc.rightsPost-print
dc.subjectsheet metal forming
dc.subjectanisotropy
dc.subjectfinite element simulation
dc.subjectcup drawing
dc.subjectearing
dc.subjectstrain-rate potential
dc.titleNumerical simulation of sheet metal forming using anisotropic strain-rate potentials
dc.identifier.doi10.1016/j.msea.2009.03.078
dc.typdocArticle dans une revue avec comité de lecture
dc.localisationCentre de Metz
dc.subject.halSciences de l'ingénieur: Mécanique: Mécanique des matériaux
ensam.audienceInternationale
ensam.page261-275
ensam.journalMaterials Science and Engineering: A
ensam.volume517
ensam.issue1-2
hal.identifierhal-01192743
hal.version1
hal.statusaccept


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