Fracture mechanisms for SiC fibers and SiC/SiC composites under stress-rupture conditions at high temperatures

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The successful application of SiC/SiC ceramic matrix composites as high-temperature structural materials depends strongly on maximizing the fracture or rupture life of the load-bearing fiber and matrix constituents. Using high-temperature data measured under stress-rupture test conditions, this study examines in a mechanistic manner the effects of various intrinsic and extrinsic factors on the creep and fracture behavior of a variety of SiC fiber types. It is shown that although some fiber types fracture during a large primary creep stage, the fiber creep rate just prior to fracture plays a key role in determining fiber rupture time (Monkman–Grant theory). If it is assumed that SiC matrices rupture in a similar manner as fibers with the same microstructures, one can develop simple mechanistic models to analyze and optimize the stress-rupture behavior of SiC/SiC composites for applied stresses that are initially below matrix cracking.

论文关键词:SiC fibers,SiC matrices,SiC/SiC composites,Creep,Rupture,Mechanisms,Monkman–Grant diagrams

论文评审过程:Available online 6 August 2003.

论文官网地址:https://doi.org/10.1016/S0096-3003(03)00570-8