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Finite element micromechanical analysis of the deformation and stress state dependent damage evolution in fiber reinforced metal matrix composites

机译:纤维增强金属基复合材料的变形和应力状态相关损伤演化的有限元微力学分析

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摘要

The progression of ductile damage evolution in the metal matrix and the macroscopic deformation behavior of fiber-reinforced metal matrix composite were investigated using an Internal State Variable (ISV) plasticity-damage model implemented in finite element code. The material properties of the fibers were set as those of Boron while the material properties or behavior of the metal matrix matched those of 99% pure aluminum. The influences of the fiber arrangement and the interphase stiffness on the damage evolution and transverse macroscopic behavior were analyzed. The finite element simulations were terminated when the first element failure occurred. The simulation results show that the void grew as the stress triaxiality increased. After the volume fraction of the fibers increased up to moderate value (about 40%), the fiber square array exhibited much stronger strengthening effects than that of fiber hexagonal array. The damage evolution, in the case of the weak interphase, was studied as well.
机译:利用在有限元代码中实现的内部状态变量(ISV)塑性-损伤模型,研究了金属基质中延性损伤演变的进程以及纤维增强金属基质复合材料的宏观变形行为。纤维的材料性能设为硼,而金属基体的材料性能或行为与99%纯铝的材料性能或行为相匹配。分析了纤维排列和相间刚度对损伤演变和横向宏观行为的影响。当发生第一个元素故障时,有限元模拟将终止。仿真结果表明,空隙随着应力三轴性的增加而增大。在纤维的体积分数增加到中等值(约40%)后,纤维正方形阵列显示出比纤维六角形阵列强得多的增强效果。在相间较弱的情况下,也研究了损伤演化。

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