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Micromechanical modeling of tungsten-based bulk metallic glass matrix composites

机译:钨基块状金属玻璃基复合材料的微力学建模

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Micromechanics models are developed for tungsten (W)-based bulk metallic glass (BMG) matrix composites employing the Voronoi tessellation technique and the finite element (FE) method. The simulation results indicate that the computed elastic moduli are close to those measured in the experiments. The predicted stress-strain curves agree well with their experimentally obtained counterparts in the early stage of the plastic deformation. An increase in the W volume fraction leads to a decrease in the yield stress and an increase in the Young's modulus of the composite. In addition, contours of equivalent plastic strain for increasing applied strains provide an explanation why shear bands were observed in the glassy phase, along the W/BMG interface, and in the W phase of failed W/BMG composite specimens.
机译:使用Voronoi镶嵌技术和有限元(FE)方法为基于钨(W)的块状金属玻璃(BMG)基复合材料开发了微力学模型。仿真结果表明,所计算的弹性模量接近于实验中测得的弹性模量。在塑性变形的早期,预测的应力-应变曲线与通过实验获得的对应曲线非常吻合。 W体积分数的增加导致屈服应力的降低和复合材料的杨氏模量的提高。此外,等效塑性应变的等值线可以增加施加的应变,这说明了为什么在玻璃相,沿W / BMG界面以及失效的W / BMG复合材料试样的W相中观察到剪切带。

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