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Plastic deformation and fracture behaviors in particle-reinforced aluminum composites: A numerical approach using an enhanced finite element model

机译:粒子增强铝复合材料中的塑性变形和断裂行为:一种使用增强有限元模型的数值方法

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摘要

A microstructure-based comprehensive finite element model, which incorporated the deformation/fracture of the matrix alloy, fracture of the particle and decohesion of interface, was built to predict the effects of particle size and shape on the plastic deformation and fracture behaviors in particle-reinforced metal matrix composites. The effect of particle size on the yield strength and work hardening rate of the matrix alloy was demonstrated. When the particle diameter is <10 mu m, the fracture of the matrix alloy near the interface dominates the failure mechanism of the composite, whereas changed to particle fracture with particle diameter >10 mu m. A cohesive zone model was also included in order to predict interfacial failure behavior. It was noted that SiC/Al interface exhibits a high interfacial bonding strength and the interfacial decohesion was caused by crack propagation from the particle to the interface. The simulation results are in good agreement with the experiment tensile test results in the SiCp/6061Al composite.
机译:基于微观结构的综合有限元模型,其掺入基质合金的变形/断裂,颗粒和界面的破裂的裂缝,以预测粒径和形状对颗粒中的塑性变形和裂缝行为的影响 - 增强金属基质复合材料。粒度对基质合金的屈服强度和工作硬化率的影响。当粒径为<10μm时,界面附近的基质合金的断裂占据复合材料的故障机理,而用粒径为10μm的颗粒骨折。还包括一个粘性区域模型以预测界面失效行为。注意,SiC / Al界面表现出高界面键合强度,并且通过从颗粒到界面的裂缝繁殖引起界面脱粘。模拟结果与SICP / 6061AL复合材料中的实验拉伸试验结果吻合良好。

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