Creep behaviors of 3D C/SiC in high speed combustion gas at 1300 °C

Xin'Gang Luan, Laifei Cheng

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

To understand the creep damage mechanism of a standard 3D Carbon fiber reinforced silicon carbide composite (C/SiC) in high temperature combustion gas at 1300 °C, the creep tests were carried out in a combustion wind tunnel and the mechanisms were investigated by the extension of specimens and the microstructure of fracture section. It was found that the external tensile load was bore by the carbon fibers in the active region during the stressed oxidation process. The oxidation mechanisms of the active region were determined by a normalized threshold stress. Below the normalized threshold stress, the oxidation was controlled by internal diffusion of oxidizing gases through microcracks in SiC matrix. Above the normalized threshold stress, the oxidation was controlled by the reaction of carbon fiber with oxygen and water vapor.

Original languageEnglish
Title of host publicationSmart Materials and Intelligent Systems
Pages802-805
Number of pages4
DOIs
StatePublished - 2011
EventInternational Conference on Smart Materials and Intelligent Systems 2010, SMIS 2010 - Chongqing, China
Duration: 17 Dec 201020 Dec 2010

Publication series

NameAdvanced Materials Research
Volume143-144
ISSN (Print)1022-6680

Conference

ConferenceInternational Conference on Smart Materials and Intelligent Systems 2010, SMIS 2010
Country/TerritoryChina
CityChongqing
Period17/12/1020/12/10

Keywords

  • Ceramic-matrix composites (CMCs)
  • Creep
  • Damage mechanics

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