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dc.rights.licenseopenen_US
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
hal.structure.identifierInstitut des Sciences Moléculaires [ISM]
dc.contributor.authorLEYSSALE, Jean-Marc
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
dc.contributor.authorCOUEGNAT, Guillaume
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
dc.contributor.authorJOUANNIGOT, Stephane
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
dc.contributor.authorVIGNOLES, Gerard
IDREF: 070191875
dc.date.accessioned2023-01-24T14:54:41Z
dc.date.available2023-01-24T14:54:41Z
dc.date.issued2022-09
dc.identifier.issn0008-6223en_US
dc.identifier.urihttps://oskar-bordeaux.fr/handle/20.500.12278/171771
dc.description.abstractEnWe present a combined experimental and computational study of the elastic behavior of a series of highly anisotropic pyrocarbons, with crystallite sizes La in the 2–10 nm range, under a-axis compressive load. The materials include a rough laminar and a regenerative laminar pyrocarbon, as-prepared by chemical vapor deposition and after various heat treatments up to 2600 °C, for which a-axis nanoindentation experiments have been performed, showing a significant decrease in the indentation modulus and hardness with increasing La (or heat treatment temperature). To rationalize this behavior, molecular dynamics simulations of the uniaxial compression of accurate atomistic models of the materials as well as pristine graphite were performed, unraveling significant out-of-plane deformations in the models with increasing compressive strain, leading to elastic softening. More precisely, significant kinks were observed around extended screw dislocation-like defects in the most disordered pyrocarbon at rather large strain levels (∼ 3%). Conversely, graphite rather shows the formation of extended buckles, starting at very low strain values. Finite element modelling shows that such kinking/buckling transitions should take place in a large area under the indenter tip within usual nanoindentation conditions. Both finite element calculation and analytical approximation of the indentation modulus predict the correct trend of decreasing modulus with increasing La when applied with the elastic tensors computed after the buckling/kinking transitions, certainly proving the importance of the latter in the observed experimental indentation moduli.
dc.language.isoENen_US
dc.subject.enbuckling
dc.subject.encompression & indentation
dc.subject.enmodelling & simulation
dc.subject.enpyrolytic carbon
dc.title.enMechanisms of elastic softening in highly anisotropic carbons under in-plane compression/indentation
dc.title.alternativeCarbonen_US
dc.typeArticle de revueen_US
dc.identifier.doi10.1016/j.carbon.2022.06.063en_US
dc.subject.halSciences de l'ingénieur [physics]/Matériauxen_US
bordeaux.journalCarbonen_US
bordeaux.page425-434en_US
bordeaux.volume197en_US
bordeaux.hal.laboratoriesLaboratoire des Composites Thermo Structuraux (LCTS) - UMR 5801en_US
bordeaux.institutionUniversité de Bordeauxen_US
bordeaux.institutionCNRSen_US
bordeaux.institutionCEAen_US
bordeaux.institutionBordeaux INP
bordeaux.peerReviewedouien_US
bordeaux.inpressnonen_US
hal.exportfalse
dc.rights.ccPas de Licence CCen_US
bordeaux.COinSctx_ver=Z39.88-2004&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.jtitle=Carbon&rft.date=2022-09&rft.volume=197&rft.spage=425-434&rft.epage=425-434&rft.eissn=0008-6223&rft.issn=0008-6223&rft.au=LEYSSALE,%20Jean-Marc&COUEGNAT,%20Guillaume&JOUANNIGOT,%20Stephane&VIGNOLES,%20Gerard&rft.genre=article


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