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Size dependence and stochastic nature of yield strength of micron-sized crystals: a case study on Ni3Al

机译:微米级晶体屈服强度的尺寸依赖性和随机性:以Ni3Al为例

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摘要

Recent experiments indicate that the first yield point of micron-sized metals exhibits significant statistical scatter as well as strong dependence on the specimen size. In this work, molecular dynamics (M/D) simulations are carried out to investigate the onset of shear deformation in a small block of material, using an embedded atom potential for the intermetallic Ni3Al alloy. Incipient plasticity, in the form of homogeneous dislocation generation is observed to occur at atomic sites with interatomic displacements approaching one-half of the Shockley partial Burgers vector. From the distribution function of the interatomic displacements observed in the MD simulations, the probability of a general material volume surviving under given loading conditions is predicted. The survival probability is then calculated for several situations, including homogeneous deformation and nanoindentation, to predict the critical load for incipient plasticity to occur in these situations. The predicted results are compared to micro-pillar compression and nanoindentation experiments on Ni3Al available in the literature.
机译:最近的实验表明,微米级金属的第一个屈服点表现出显着的统计散点以及对标本尺寸的强烈依赖性。在这项工作中,进行了分子动力学(M / D)模拟,以研究一小块材料中的剪切变形的发生,其中使用了嵌入金属间Ni3Al合金的原子势。观察到以均相位错形式出现的初期可塑性在原子位点发生,原子间位移接近肖克利部分伯格斯载体的一半。根据在MD模拟中观察到的原子间位移的分布函数,可以预测在给定的载荷条件下一般材料体积幸存的概率。然后计算几种情况的存活概率,包括均匀变形和纳米压痕,以预测在这些情况下发生初始塑性的临界载荷。将预测结果与文献中可用的针对Ni3Al的微柱压缩和纳米压痕实验进行了比较。

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