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- W2472342981 abstract "There is an increasing interest in oxide-oxide refractory composites and ceramic matrix composites (CMC) because of their high strength, high creep resistance and resistance to crack propagation in high-temperature structural and non-structural applications. High strength and low modulus oxide fibers are introduced into ceramic oxide matrices in order to resist crack growth (i.e., increase the composite`s strain to failure or {open_quotes}toughness{close_quotes}). Nevertheless, the introduction of a 2-D fibrous matte or 3-D fibrous preform into a ceramic matrix constrains the densification of the composite. (As a result, as prepared composite`s typically will have about 20 percent residual porosity.) Although higher densification is possible by free or pressure-less sintering, degradation of the mechanical properties of the fibers at elevated temperatures (e.g., normally above 1100{degrees}C for mullite fibers) prevents the application of high-temperature processing. An oxide-oxide composite composed of a high-purity alumina matrix and mullite; fibrous reinforcement has been used in this study. A fugitive carbon coating has been applied to 2-D fibrous mattes and 3-D preforms by chemical vapor deposition (CVD) and by polymer pyrolysis of a polymeric based resin system. This paper will only discuss the processing and applicable analysis of the CMC prepared with the applied polymeric pyrolyzed carbon coating." @default.
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- W2472342981 date "1995-12-01" @default.
- W2472342981 modified "2023-09-27" @default.
- W2472342981 title "Optimization of the fugitive coating thickness in pressure infiltrated mullite-alumina composites" @default.
- W2472342981 hasPublicationYear "1995" @default.
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