Numerical simulation of isothermal chemical vapor infiltration process in fabrication of carbon-carbon composites by finite element method

Kezhi Li, Hejun Li, Kaiyu Jiang, Xianghui Hou

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

The chemical vapor infiltration process in fabrication of carbon-carbon composites is highly inefficient and requires long processing time. These limitations add considerably to the cost of fabrication and restrict the application of this material. Efforts have been made to study the CVI process in fabrication of carbon-carbon composites by computer simulation and predict the process parameters, density, porosity, etc. According to the characteristics of CVI process, the basic principle of FEM and mass transport, the finite element model has been established. Incremental finite element equations and the elemental stiffness matrices have been derived for the first time. The fenite element program developed by the authors has been used to simulate the ICVI process in fabrication of carbon-carbon composites. Computer color display of simulated results can express the densification and distributions of density and porosity in preform clearly. The influence of process parameters on the densification of preform has been analyzed. The numerically simulated and experimental results give a good agreement.

Original languageEnglish
Pages (from-to)77-85
Number of pages9
JournalScience in China, Series E: Technological Sciences
Volume43
Issue number1
DOIs
StatePublished - Feb 2000

Keywords

  • Carbon-carbon composites
  • Chemical vapor infiltration
  • Finite element method
  • Numerical simulation

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