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Markov Process Model for the Strength and Reliability of Unidirectional Fiber-Reinforced Ceramic Matrix Composites

机译:马尔可夫工艺模型为单向纤维增强陶瓷基复合材料的强度和可靠性

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摘要

A stochastic model for predicting the strength and reliability of a unidirectional fiber-reinforced ceramic matrix composite is proposed, based on the Markov process model. In the proposed model, stress distributions in the composite follow the Curtin's assumptions, of which validity is examined by using the FEM model consisting of fiber, matrix and interface elements. It is further assumed that a state of damage in the composite is evolved with each fiber breakage. Then, the damage evolution process is governed by simultaneous first-order differential equations. When the Weibull distribution is used as a strength distribution of the fiber, each state probability is analytically obtained as a function of stress. The expected value and variance of the composite stress were estimated from the state probabilities. Additionally the maximum stress of the expected value, i.e. the strength, was predicted together with the coefficient of variation. The results showed that, even if broken fibers are imperfectly recovered in stress on the fiber-axis away from the breakage points, the composite exhibits a higher strength and reliability than that of bundle structure. Finally, it is concluded that stress recovery in broken fibers is a significant mechanism to increase the strength and reliability of the composite.
机译:提出了一种用于预测单向纤维增强陶瓷基质复合材料的强度和可靠性的随机模型,基于Markov过程模型。在所提出的模型中,复合材料中的应力分布遵循关节的假设,其中通过使用由光纤,矩阵和界面元素组成的FEM模型来检查有效性。进一步假设复合材料中的损伤状态随着每种纤维破裂而发展。然后,损坏进化过程由同时一阶微分方程控制。当威布尔分布用作光纤的强度分布时,每个状态概率被分析为应力的函数。从状态概率估计复合应力的预期值和方差。另外,预期值的最大应力,即强度,与变异系数一起预测。结果表明,即使破碎的纤维在纤维轴上的应力中不完全回收,复合材料也表现出比束结构更高的强度和可靠性。最后,结论是破碎纤维中的应力恢复是提高复合材料的强度和可靠性的重要机制。

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