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 hal.structure.identifier
GRENNERAT, Fanny
664 Laboratoire de glaciologie et géophysique de l'environnement [LGGE]
dc.contributor.author
 hal.structure.identifier
MONTAGNAT, Maurine
664 Laboratoire de glaciologie et géophysique de l'environnement [LGGE]
dc.contributor.author
 hal.structure.identifier
CASTELNAU, Olivier
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
dc.contributor.author
 hal.structure.identifier
VACHER, Pierre
25118 Laboratoire SYstèmes et Matériaux pour la MEcatronique [SYMME]
dc.contributor.authorMOULINEC, Hervé
dc.contributor.authorSUQUET, Pierre
dc.contributor.authorDUVAL, P
dc.date.accessioned2015
dc.date.available2015
dc.date.issued2012
dc.date.submitted2015
dc.identifier.issn1359-6454
dc.identifier.urihttp://hdl.handle.net/10985/10276
dc.description.abstractA digital image correlation (DIC) technique has been adapted to polycrystalline ice specimens in order to characterize the development of strain heterogeneities at an intragranular scale during transient creep deformation (compression tests). Specimens exhibit a columnar microstructure so that plastic deformation is essentially two-dimensional, with few in-depth gradients, and therefore surface DIC analyses are representative of the whole specimen volume. Local misorientations at the intragranular scale were also extracted from microstructure analyses carried out with an automatic texture analyzer before and after deformation. Highly localized strain patterns are evidenced by the DIC technique. Local equivalent strain can reach values as much as an order of magnitude larger than the macroscopic average. The structure of the strain pattern does not evolve with strain in the transient creep regime. Almost no correlation between the measured local strain and the Schmid factor of the slip plane of the underlying grain is observed, highlighting the importance of the mechanical interactions between neighboring grains resulting from the very large viscoplastic anisotropy of ice crystals. Finally, the experimental microstructure was introduced in a full-field fast Fourier transform polycrystal model; simulated strain fields are a good match with experimental ones.
dc.language.isoen
dc.publisherElsevier
dc.rightsPost-print
dc.subjectElasto-viscoplasticity
dc.subjectPolycrystal
dc.subjectCreep
dc.subjectStrain heterogeneities
dc.subjectDigital image correlation
dc.titleExperimental characterization of the intragranular strain field in columnar ice during transient creep
dc.identifier.doi10.1016/j.actamat.2012.03.025
dc.typdocArticle dans une revue avec comité de lecture
dc.localisationCentre de Paris
dc.subject.halSciences de l'ingénieur: Matériaux
dc.subject.halSciences de l'ingénieur: Mécanique
ensam.audienceInternationale
ensam.page3655–3666
ensam.journalActa Materialia
ensam.volume60
hal.identifierhal-01207398
hal.version1
hal.statusreplace


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