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Ceramic composites: A review of toughening mechanisms and demonstration of micropillar compression for interface property extraction

机译:陶瓷复合材料:增韧机理的综述和微柱压缩的界面性能提取演示

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Ceramic fiber-matrix composites (CFMCs) are exciting materials for engineering applications in extreme environments. By integrating ceramic fibers within a ceramic matrix, CFMCs allow an intrinsically brittle material to exhibit sufficient structural toughness for use in gas turbines and nuclear reactors. Chemical stability under high temperature and irradiation coupled with high specific strength make these materials unique and increasingly popular in extreme settings. This paper first offers a review of the importance and growing body of research on fiber-matrix interfaces as they relate to composite toughening mechanisms. Second, micropillar compression is explored experimentally as a high-fidelity method for extracting interface properties compared with traditional fiber push-out testing. Three significant interface properties that govern composite toughening were extracted. For a 50-nm-pyrolytic carbon interface, the following were observed: a fracture energy release rate of similar to 2.5 J/m(2), an internal friction coefficient of 0.25 +/- 0.04, and a debond shear strength of 266 +/- 24 MPa. This research supports micromechanical evaluations as a unique bridge between theoretical physics models for microcrack propagation and empirically driven finite element models for bulk CFMCs.
机译:陶瓷纤维基复合材料(CFMC)是极端环境下工程应用中令人兴奋的材料。通过将陶瓷纤维整合到陶瓷基体中,CFMC使本质上易碎的材料具有足够的结构韧性,可用于燃气轮机和核反应堆。高温和辐射下的化学稳定性以及高比强度使这些材料独特,并在极端环境中越来越受欢迎。本文首先回顾了纤维-基质界面与复合增韧机制相关的重要性和不断发展的研究。其次,与传统的光纤推出测试相比,微柱压缩在实验上是一种提取界面特性的高保真方法。提取了控制复合增韧的三个重要界面特性。对于50 nm的热解碳界面,观察到以下结果:断裂能释放速率类似于2.5 J / m(2),内部摩擦系数为0.25 +/- 0.04,脱粘剪切强度为266 + /-24 MPa。这项研究支持微机械评估,将其作为微裂纹传播的理论物理模型与大体积CFMC的经验驱动的有限元模型之间的唯一桥梁。

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