Mechanical properties of chemically vapor-infiltrated silicon carbide structural composites with thin carbon interphases for fusion and advanced fission applications

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Abstract

Fast fracture properties of chemically vapor-infiltrated silicon carbide matrix composites with Hi-Nicalon™ Type-S near-stoichiometric silicon carbide fiber reinforcements and thin pyrolytic carbon interphase were studied. The primary emphasis was on preliminary assessment of the applicability of a very thin pyrolytic carbon interphase between fibers and matrices of silicon carbide composites for use in nuclear environments. It appears that the mechanical properties of the present composite system are not subject to strong interphase thickness effects, in contrast to those in conventional non-stoichiometric silicon carbide-based fiber composites. The interphase thickness effects are discussed from the viewpoints of residual thermal stress, fiber damage, and interfacial friction. A preliminary conclusion is that a thin pyrolytic carbon interphase is beneficial for fast fracture properties of stoichiometric silicon carbide composites. © 2005 The Japan Institute of Metals.

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Katoh, Y., Snead, L. L., Nozawa, T., Hinoki, T., Kohyama, A., Igawa, N., & Taguchi, T. (2005). Mechanical properties of chemically vapor-infiltrated silicon carbide structural composites with thin carbon interphases for fusion and advanced fission applications. In Materials Transactions (Vol. 46, pp. 527–535). https://doi.org/10.2320/matertrans.46.527

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