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Micromechanical modeling of damage in periodic composites using strain gradient plasticity

机译:利用应变梯度可塑性对周期性复合材料损伤进行细观力学建模

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摘要

Damage evolution at the fiber matrix interface in Metal Matrix Composites (MMCs) is studied using strain gradient theory of plasticity. The study includes the rate independent formulation of energetic strain gradient plasticity for the matrix, purely elastic model for the fiber and cohesive zone model for the fiber-matrix interface. For the micro structure, free energy holds both elastic strains and plastic strain gradients. Due to the gradient theory, higher order boundary conditions must be considered. A unit cell with a circular elastic fiber is studied by the numerical finite element cell model under simple shear and transverse uniaxial tension using plane strain and periodic boundary conditions. The result of the overall response curve, effective plastic strain, effective stress and higher order stress distributions are shown. The effect of the material length scale, maximum stress carried by the interface and the work of separation per unit interface area on the composites overall behavior are investigated. The results are compared with those for strong interface.
机译:使用塑性应变梯度理论研究了金属基复合材料(MMC)中纤维基体界面处的损伤演化。研究包括基质的高能应变梯度可塑性的速率无关公式,纤维的纯弹性模型和纤维-基质界面的内聚区模型。对于微观结构,自由能同时具有弹性应变和塑性应变梯度。由于梯度理论,必须考虑更高阶的边界条件。在平面剪切和周期性边界条件下,通过简单剪切和横向单轴拉伸,通过数值有限元单元模型研究了具有圆形弹性纤维的晶胞。显示了整体响应曲线,有效塑性应变,有效应力和高阶应力分布的结果。研究了材料长度尺度,界面所承受的最大应力以及单位界面面积分离工作对复合材料整体性能的影响。将结果与强界面的结果进行比较。

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