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Schottky defects induced effects on the behaviors of high velocity shock compression of MgO

机译:肖特基缺陷对MgO高速冲击压缩行为的影响

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Molecular dynamics (MD) simulation was performed on high velocity plane shock compression of sodium chloride MgO along [100] lattice direction using a long-range coulombic potential. It was found that the shock compressions of MgO revealed three distinct regions depending on piston velocities, i.e., single elastic shock wave, two-wave structure consisting of an elastic wave followed by a plastic deformation wave, and single plastic deformation shock wave. The critical pressure of 120 GPa was obtained for the transition from elastic to plastic deformation under the high strain rate of 1010 s?1. For getting a better understanding the experimental results, we also investigated the effects of Schottky defects in MgO single crystal on the Hugoniot Elastic Limit (HEL), the velocity of shock wave and the critical piston velocity (CPV) resulting in plastic deformation. Our results demonstrated that the HEL decreases from 120 GPa to 100 GPa, and the CPV decreases a little from 2.8 km s?1 to 2.2 km s?1. Significantly, a double yielding phenomenon occurs for shock wave propagating in MgO sample with Schottky defects, i.e., homogeneous nucleation of dislocations accompanied by vacancy emission of dislocations, which has never been reported before. This work helps to clarify the contradictory results of HEL of MgO in the literature and to understand the plastic deformation mechanism of MgO.
机译:分子动力学(MD)模拟是使用长距离库仑电势沿氯化钠MgO沿[100]晶格方向进行高速平面冲击压缩的。结果发现,MgO的冲击压缩根据活塞速度显示三个不同的区域: ie ,单弹性冲击波,由弹性波和塑性变形波组成的两波结构和单塑性变形冲击波。在10 10 s ?1 。为了更好地了解实验结果,我们还研究了MgO单晶中的肖特基缺陷对Hugoniot弹性极限(HEL),冲击波速度和临界活塞速度(CPV)导致塑性变形的影响。我们的结果表明,HEL从120 GPa降低到100 GPa,而CPV从2.8 km s ?1 减小到2.2 km s ?1 。值得注意的是,冲击波在具有肖特基缺陷()的MgO样品中传播时会发生双屈服现象,即位错的均匀成核并伴随着位错的空位发射,这是以前从未报道过的。这项工作有助于澄清文献中MgO HEL的矛盾结果,并了解MgO的塑性变形机理。

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