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Experimental observation and numerical simulation of SiC_(3D)/Al interpenetrating phase composite material subjected to a three-point bending load

机译:SiC_(3D)/ Al互穿相复合材料三点弯曲载荷的实验观察与数值模拟

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摘要

The failure process and the underlying mechanism of crack initiation, crack propagation and eventual fracture of SiC_(3D)/Al interpenetrating phase composite subjected to a static three-point bending load were investigated using in-situ SEM observation and two-dimensional microstructure-embedded numerical simulation. It was found that stress concentration originally occurred in the SiC ceramic phase near the bottom of the specimen, causing horizontal tensile forces and inducing a vertical microcrack inside the SiC phase near the SiC-Al interface. With increased load, more microcracks were gradually initiated in the SiC phase, and severe tearing plastic deformation and cracking of the Al phase occurred at the base of the specimen. Subsequently, the microcracks propagated and connected to form a primary crack. It was notable that at the final stage of the primary crack, cracking in the Al phase no longer occurred due to the sudden release of the internal energy in the composite material. Interestingly, the primary crack bridged over the Al phase then continued to propagate in the SiC material. Simulated results were consistent with observed behavior.
机译:利用原位SEM观察和二维微观结构研究了SiC_(3D)/ Al互穿相复合材料在静态三点弯曲载荷作用下的破裂过程,裂纹萌生,裂纹扩展和最终断裂的机理。数值模拟。发现应力集中最初出现在样品底部附近的SiC陶瓷相中,从而引起水平拉伸力并在SiC-Al界面附近的SiC相内部引起垂直微裂纹。随着载荷的增加,在SiC相中逐渐出现了更多的微裂纹,并且在试样的底部发生了严重的撕裂塑性变形和Al相的开裂。随后,微裂纹传播并连接以形成初级裂纹。值得注意的是,在一次裂纹的最后阶段,由于复合材料内部能量的突然释放,不再发生Al相的裂纹。有趣的是,桥接在Al相上的初级裂纹然后继续在SiC材料中扩展。模拟结果与观察到的行为一致。

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