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Quantifying Effects of Voids in Woven Ceramic Matrix Composites

机译:编织陶瓷基复合材料中空隙的量化作用

摘要

Randomness in woven ceramic matrix composite architecture has been found to cause large variability in stiffness and strength. The inherent voids are an aspect of the architecture that may cause a significant portion of the variability. A study is undertaken to investigate the effects of many voids of random sizes and distributions. Response surface approximations were formulated based on void parameters such as area and length fractions to provide an estimate of the effective stiffness. Obtaining quantitative relationships between the properties of the voids and their effects on stiffness of ceramic matrix composites are of ultimate interest, but the exploratory study presented here starts by first modeling the effects of voids on an isotropic material. Several cases with varying void parameters were modeled which resulted in a large amount of variability of the transverse stiffness and out-of-plane shear stiffness. An investigation into a physical explanation for the stiffness degradation led to the observation that the voids need to be treated as an entity that reduces load bearing capabilities in a space larger than what the void directly occupies through a corrected length fraction or area fraction. This provides explanation as to why void volume fraction is not the only important factor to consider when computing loss of stiffness.
机译:已发现编织陶瓷基复合材料结构中的随机性会引起刚度和强度的较大变化。固有的空隙是体系结构的一个方面,可能会导致很大一部分可变性。进行了一项研究以调查许多随机大小和分布的空隙的影响。基于空隙参数(例如面积和长度分数)制定了响应面近似值,以提供对有效刚度的估计。获得空隙的性质及其对陶瓷基复合材料刚度的影响之间的定量关系是最终关注的问题,但此处提出的探索性研究首先要对空隙对各向同性材料的影响进行建模。对几种具有变化的空隙参数的情况进行了建模,这导致了横向刚度和面外剪切刚度的大量变化。对有关刚度降低的物理解释的研究导致观察到,需要将空隙视为一个实体,该实体会降低空间中的承载能力,而该空间的大小要大于经过校正的长度分数或面积分数直接占据的空隙。这提供了关于为什么在计算刚度损失时空隙体积分数不是唯一要考虑的重要因素的解释。

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