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Evolution of elastic precursor and plastic shock wave in copper via molecular dynamics simulations

机译:通过分子动力学模拟铜弹性前兆和塑性冲击波的演变

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Large-scale molecular dynamics (MD) simulations are performed to investigate shock propagation in single crystal copper. It is shown that the P-V plastic Hugoniot is unique regardless of the sample's orientation, its microstructure, or its length. However, the P-V pathway to the final state is not, and depends on many factors. Specifically, it is shown that the pressure in the elastic precursor (the Hugoniot elastic limit (HEL)) decreases as the shock wave propagates in a micron-sized sample. The attenuation of the HEL in sufficiently-long samples is the main source of disagreement between previous MD simulations and experiment:while single crystal experiments showed that the plastic shock speed is orientation-independent, the simulated plastic shock speed was observed to be orientation-dependent in relatively short single-crystal samples. Such orientation dependence gradually disappears for relatively long, micrometer-sized, samples for all three low-index crystallographic directions <100>, <110>, and <111>, and the plastic shock velocities for all three directions approach the one measured in experiment. The MD simulations also demonstrate the existence of subsonic plastic shock waves generated by relatively weak supporting pressures.
机译:进行大规模分子动力学(MD)模拟以研究单晶铜中的冲击传播。结果表明,无论样品的方向,其微观结构还是长度,P-V塑料Hugoniot都是独一无二的。然而,最终状态的P-V路径不是,并且取决于许多因素。具体地,显示弹性前体(Hugoniot弹性极限(HeL))中的压力随着冲击波在微米尺寸的样品中传播而降低。 Hel在足够长的样品中的衰减是之前的MD模拟和实验之间的分歧的主要来源:虽然单晶实验表明,塑性冲击速度与定向无关,但观察到模拟的塑料冲击速度被观察到取决于取向在相对短的单晶样品中。这种取向依赖性逐渐​​消失,对于所有三个低折射率结晶方向<100,<110>和<111>,以及所有三个方向的塑性冲击速度接近实验中测量的塑料冲击速度。 MD仿真还展示了通过相对较弱的支撑压力产生的亚音速塑性冲击波的存在。

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