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dc.rights.licenseopenen_US
dc.relation.isnodoubled2cc46be-60ee-4b81-8458-afdf4ea27198*
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
dc.contributor.authorMAZERAT, Stéphane
dc.contributor.authorDELCAMP, Adrien
hal.structure.identifierLaboratoire des Composites Thermostructuraux [LCTS]
dc.contributor.authorPAILLER, Rene
dc.contributor.authorLAMON, Jacques
dc.contributor.authorPLAISANTIN, Hervé
dc.date.accessioned2021-12-07T15:16:23Z
dc.date.available2021-12-07T15:16:23Z
dc.date.issued2018-12-01
dc.identifier.issn0955-2219en_US
dc.identifier.urioai:crossref.org:10.1016/j.jeurceramsoc.2018.06.026
dc.identifier.urihttps://oskar-bordeaux.fr/handle/20.500.12278/124045
dc.description.abstractEnSilicon carbide fibers combine structural and refractory properties making them good candidates for ceramic matrix composite reinforcement, driving their ultimate failure. The fractographic observation after tensile tests of various silicon carbide fibers, belonging to first, second or third generations, reveals the critical flaw location i.e. internal or surface. An etching treatment under pure chlorine at 500–850 °C can be used to transform the fibers surface on hundreds of nanometers and alter the surface-located flaw population. This way, first-generation SiC-based fibers successfully show an asymptotic improvement of tensile strength (up to 60%) and Weibull modulus (up to twice), when etched on 0.3–1 μm depth range. The lifetime of bundles, under static fatigue conditions at intermediate temperature, is consequently multiplied by a factor ranging from 10 to 40 with a narrower dispersion. Nevertheless, the tensile strength could neither be increased on second-generation Hi-Nicalon nor dramatically dropped on third-generation Hi-Nicalon-S fiber.
dc.language.isoENen_US
dc.sourcecrossref
dc.subject.enSilicon carbide fibers
dc.subject.enChlorination
dc.subject.enSurface flaw
dc.subject.enStrength
dc.subject.enLifetime
dc.title.enImprovement of silicon carbide fibers mechanical properties by Cl2 etching
dc.typeArticle de revueen_US
dc.identifier.doi10.1016/j.jeurceramsoc.2018.06.026en_US
dc.subject.halSciences de l'ingénieur [physics]/Matériauxen_US
bordeaux.journalJournal of the European Ceramic Societyen_US
bordeaux.page5301-5310en_US
bordeaux.volume38en_US
bordeaux.hal.laboratoriesLaboratoire des Composites Thermo Structuraux (LCTS) - UMR 5801en_US
bordeaux.issue16en_US
bordeaux.institutionUniversité de Bordeauxen_US
bordeaux.institutionCNRSen_US
bordeaux.institutionCEAen_US
bordeaux.peerReviewedouien_US
bordeaux.inpressnonen_US
bordeaux.import.sourcedissemin
hal.identifierhal-02146160
hal.version1
hal.exporttrue
workflow.import.sourcedissemin
dc.rights.ccPas de Licence CCen_US
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