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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Strain-rate and temperature dependence of yield stress of amorphous solids via a self-learning metabasin escape algorithm
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Strain-rate and temperature dependence of yield stress of amorphous solids via a self-learning metabasin escape algorithm

机译:通过自学习元流域逃逸算法对非晶态固体的屈服应力的应变率和温度依赖性

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A general self-learning metabasin escape (SLME) algorithm (Cao et al., 2012) is coupled in this work with continuous shear deformations to probe the yield stress as a function of strain rate and temperature for a binary Lennard-Jones (LJ) amorphous solid. The approach is shown to match the results of classical molecular dynamics (MD) at high strain rates where the MD results are valid, but, importantly, is able to access experimental strain rates that are about ten orders of magnitude slower than MD. In doing so, we find in agreement with previous experimental studies that a substantial decrease in yield stress is observed with a decreasing strain rate. At room temperature and laboratory strain rates, the activation volume associated with yield is found to contain about 10 LJ particles, while the yield stress is as sensitive to a 1.5%T_g increase in temperature as it is to a one order of magnitude decrease in the strain rate. Moreover, our SLME results suggest that the SLME and extrapolated results from MD simulations follow distinctly different energetic pathways during the applied shear deformation at low temperatures and experimental strain rates, which implies that extrapolation of the governing deformation mechanisms from MD strain rates to experimental may not be valid.
机译:在这项工作中,将通用的自学习元盆地逃逸(SLME)算法(Cao等人,2012)与连续剪切变形结合起来,以探究二元Lennard-Jones(LJ)随应变率和温度变化的屈服应力。无定形固体。结果表明,该方法在高应变速率下与经典分子动力学(MD)的结果相匹配,在这种情况下,MD结果是有效的,但重要的是,该方法能够获得比MD慢大约十个数量级的实验应变速率。在这样做的过程中,我们发现与先前的实验研究相一致,随着应变率的降低,屈服应力大大降低。在室温和实验室应变速率下,发现与屈服相关的活化体积包含约10 LJ颗粒,而屈服应力对温度升高1.5%T_g的敏感性与对温度降低1个数量级的敏感性一样。应变率。此外,我们的SLME结果表明SLME和MD模拟的外推结果在低温和实验应变率下施加的剪切变形过程中遵循截然不同的能量路径,这意味着从MD应变率到实验的控制变形机理的外推可能不存在。有效。

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