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Fracture Mechanisms For SiC Fibers And SiC/SiC Composites Under Stress-Rupture Conditions at High Temperatures

机译:高温下应力断裂条件下SiC纤维和SiC / SiC复合材料的断裂机理

摘要

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.
机译:SiC / SiC陶瓷基复合材料作为高温结构材料的成功应用,在很大程度上取决于最大限度地提高承载纤维和基体成分的断裂或断裂寿命。本研究使用在应力断裂测试条件下测得的高温数据,以机械方式检查了各种内在和外在因素对各种SiC纤维类型的蠕变和断裂行为的影响。结果表明,尽管某些纤维类型在较大的初级蠕变阶段会断裂,但断裂之前的纤维蠕变速率在确定纤维断裂时间中起着关键作用(Monkman-Grant理论)。如果假设SiC基质的破裂方式与具有相同微观结构的纤维的破裂方式相似,则可以开发简单的力学模型来分析和优化SiC / SiC复合材料的应力破裂行为,以应对最初低于基质开裂的外加应力。

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