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Competing grain-boundary- and dislocation-mediated mechanisms in plastic strain recovery in nanocrystalline aluminum

机译:纳米晶铝在塑性应变恢复中竞争性的晶界和位错介导机制

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摘要

Recent experiments have demonstrated that plastic strains in nanocrystalline aluminum and gold films with grain sizes on the order of 50 nm are partially recoverable. To reveal the mechanisms behind such strain recovery, we perform large scale molecular dynamics simulations of plastic deformation in nanocrystalline aluminum with mean grain sizes of 10, 20, and 30 nm. Our results indicate that the inhomogeneous deformation in a polycrystalline environment results in significant residual stresses in the nanocrystals. Upon unloading, these internal residual stresses cause strain recovery via competitive deformation mechanisms including dislocation reverse motion/annihilation and grain-boundary sliding/diffusion. By tracking the evolution of each individual deformation mechanism during strain recovery, we quantify the fractional contributions by grain-boundary and dislocation deformation mechanisms to the overall recovered strain. Our analysis shows that, even under strain rates as high as those in molecular dynamics simulations, grain-boundary-mediated processes play important roles in the deformation of nanocrystalline aluminum.
机译:最近的实验表明,晶粒大小在50 nm左右的纳米晶体铝和金膜中的塑性应变可以部分恢复。为了揭示这种应变恢复的机理,我们对平均晶粒尺寸为10、20和30 nm的纳米晶铝的塑性变形进行了大规模的分子动力学模拟。我们的结果表明,多晶环境中的不均匀变形会在纳米晶体中产生明显的残余应力。在卸载时,这些内部残余应力会通过竞争性变形机制(包括位错反向运动/ an灭和晶界滑动/扩散)引起应变恢复。通过跟踪应变恢复过程中各个变形机制的演变,我们量化了晶界和位错变形机制对总恢复应变的贡献。我们的分析表明,即使在与分子动力学模拟一样高的应变速率下,晶界介导的过程也对纳米晶铝的变形起着重要作用。

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