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The use of thermoelasticity to evaluate stress redistribution and notch sensitivity in ceramic matrix composites

机译:使用热弹性来评估陶瓷基复合材料中应力再分布和缺口敏感性

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A new generation of relatively 'ductile' CMCs is being developed that expands the general utility of structural ceramic composites. These new materials rely on inelastic mechanisms such as interface failure, matrix cracking, fiber failure and fiber pullout to redistribute stress away from locations of stress concentration. The combined effect of these mechanisms can be summarized in three macroscopic damage classifications: Class I damage is the development of a single matrix crack bridged by fibers; Class II damage involves the development of multiple cracks in the matrix; and Class III damage involves the development of a shear damage zone. The operative damage mechanism depends upon the composite constituent properties, while the extent of stress redistribution depends upon the damage mechanism. Recent experiments have identified these damage mechanisms and have also quantified the effect of stress redistribution.
机译:正在开发出新一代相对“延展岩”CMC,其扩展了结构陶瓷复合材料的一般效用。这些新材料依赖于界面故障,矩阵开裂,纤维失效和光纤拉出的无弹性机制,以重新分配远离应力集中的位置。这些机制的综合效果可在三种宏观损伤分类中概括:I类损坏是开发由纤维桥接的单个矩阵裂纹; II类损坏涉及基质中的多裂缝的发展;和III类损坏涉及剪切损伤区的发展。操作损伤机制取决于复合构成性质,而应力再分布的程度取决于损伤机制。最近的实验已经确定了这些损伤机制,并且还量化了应力再分布的影响。

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