## Abstract A twoβdimensional finite element model is developed to simulate and analyze the mechanisms pertaining to resin flow, heat transfer, and consolidation of laminated composites during autoclave processing. The model, which incorporates some of the best features of models already in existen
A finite element approach for cure simulation of thermosetting matrix composites
β Scribed by Sung Yi; H.H. Hilton; M.F. Ahmad
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 525 KB
- Volume
- 64
- Category
- Article
- ISSN
- 0045-7949
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β¦ Synopsis
A
nonlinear transient heat transfer finite element model is developed to simulate the curing process of polymer matrix composites. Temperature distributions inside laminates can be evaluated by solving the nonlinear anisotropic heat conduction equations including internal heat generation produced by exothermic chemical reactions. Thermal properties are assumed to be both temperature and degree of cure dependent. Thermal properties, degree of cure and internal heat generation due to the exothermic reaction are permitted to vary within an element. Numerical examples are presented to verify accuracy and convergence and to demonstrate use of the present finite element procedure for analyzing composite curing processes. Glass-polyester and Hercules AS4/3501-6 graphite-epoxy composites are considered. Good agreement between experimentally measured and predicted temperature distributions is obtained for various cure cycle histories.
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