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Effects of thermal residual stresses and thermal-induced geometrically necessary dislocations on size-dependent strengthening of particle-reinforced MMCs

机译:热残余应力和热诱发的几何必要位错对颗粒增强MMC尺寸依赖性增强的影响

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摘要

The thermal residual stresses (TRSes) can noticeably increase the yield strength and flow stresses of particle-reinforced metal-matrix composites (PR-MMCs) and show size-dependence due to thermal geometrically necessary dislocations (GNDs) when the size of particles is on the order of micron. This TRSes strengthening is attributed to the conventional thermal-elasto-plastic constituent mismatch (regardless of particles' size) and the presence of GNDs (size-dependent). A modified Taylor-based nonlocal theory (TNT) of plasticity is proposed to quantify the individual contributions of size-dependent GND strengthening. An axisymmetric unit-cell model of uniform and aligned particle distribution with various particle sizes is built to study thermal-induced non-uniformly distributed GNDs, their evolution and contributions to the stress strengthening under combined thermal and mechanical loading. The results show that the proposed methodology can effectively capture the size dependence of thermal-induced GNDs which keeps a sharp gradient variation in the zone near the matrix-inclusion interface and gradually flattens out in the zone far away from the interface. It is demonstrated that TRSes significantly improve the yield strength and flow stresses. It also revealed that the contribution of thermal-induced GNDs increased as the particle size in the PR-MMCs decreased. The simulation results were validated by experimental results reported in the literature.
机译:残余热应力(TRSes)可以显着增加颗粒增强的金属基复合材料(PR-MMCs)的屈服强度和流变应力,并且当颗粒尺寸处于一定大小时,由于热几何上必需的位错(GND),显示出尺寸依赖性。微米级。 TRSes的增强归因于常规的热弹塑性成分不匹配(与颗粒大小无关)和GND(取决于尺寸)。提出了一种改进的基于泰勒的可塑性非局部理论(TNT),以量化与尺寸有关的GND增强的各个作用。建立了具有各种粒径的均匀且排列的颗粒分布的轴对称单胞模型,以研究热诱导的非均匀分布的GND,其演化以及在热和机械载荷组合下对应力增强的贡献。结果表明,所提出的方法可以有效地捕获热致GND的尺寸依赖性,从而在基质-包含物界面附近的区域中保持急剧的梯度变化,并在远离界面的区域中逐渐变平。结果表明,TRSes可以显着提高屈服强度和流动应力。这也表明,随着PR-MMCs中粒径的减小,热诱导GND的贡献增加。通过文献报道的实验结果验证了仿真结果。

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