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首页> 外文期刊>Journal of the European Ceramic Society >Microstructure-induced thermal stresses in pyrolytic carbon matrices at temperatures up to 2900 deg C
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Microstructure-induced thermal stresses in pyrolytic carbon matrices at temperatures up to 2900 deg C

机译:在高达2900摄氏度的温度下,热解碳基质中的微观结构引起的热应力

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摘要

Carbon/carbon composites produced by chemical vapor infiltration consist of carbon fibers embedded in a pyrolytic carbon matrix with a cylindrically layered structure at the microscale. Each coating layer has a different texture and different mechanical properties that depend on temperature. Stress distributions in such carbon matrices subjected to thermal loading and their possible failure scenarios are analyzed. A two-scale numerical model is developed. At the nanoscale, material properties of each layer are determined using a methodology based on the Eshelby's theory for continuously distributed inclusions. The resulting material parameters for each layer are then used in the finite element modeling at the microscale. Calculations are conducted for composites with different matrix structures for several cases of thermal loading. Calculated stress distributions show zones of maximal stress concentration and provide information on possible failure regions which correspond well with experimentally identified failure regions.
机译:通过化学气相渗透法生产的碳/碳复合材料由嵌入热解碳基质中的碳纤维组成,该碳纤维在微观尺度上具有圆柱形层状结构。每个涂层具有不同的质地和取决于温度的不同机械性能。分析了受热负荷的此类碳基体中的应力分布及其可能的失效情况。建立了两尺度数值模型。在纳米级,使用基于Eshelby理论的连续分布夹杂物的方法确定每一层的材料特性。然后,将每一层的最终材料参数用于微尺度的有限元建模中。针对几种热负荷情况,对具有不同基质结构的复合材料进行了计算。计算得出的应力分布显示了最大应力集中区域,并提供了与实验确定的失效区域很好对应的可能失效区域的信息。

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