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Deformation twins in nanocrystalline body-centered cubic Mo as predicted by molecular dynamics simulations

机译:分子动力学模拟预测的纳米晶体心立方钼中的变形孪晶

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摘要

This work studies deformation twins in nanocrystalline body-centered cubic Mo, including the nucleation and growth mechanisms as well as their effects on ductility, through molecular dynamics simulations. The deformation processes of nanocrystalline Mo are simu lated using a columnar grain model with three different orientations. The deformation mechanisms identified, including dislocation slip, grain-boundary-mediated plasticity, deformation twins and martensitic transformation, are in agreement with previous studies; In columnar grains, the deformation is dominated by twinning, which nucleates primarily from the grain boundaries by successive emission of twinning partials and thickens by jog nucleation in the grain interiors. Upon arrest by a grain boundary, the twin may either produce continuous plastic strain across the grain boundary by activating compatible twinning/slip systems or result in intergranular failure in the absence of compatible twinning/slip systems in the neighboring grain. Multiple twinning systems can be activated in the same grain, and the competition between them favors those capable of producing continuous deformation across the grain boundary.
机译:本工作通过分子动力学模拟研究了纳米晶体心立方钼的变形孪晶,包括成核和生长机制及其对延展性的影响。采用三种不同取向的柱状晶粒模型模拟了纳米晶Mo的变形过程.所鉴定的变形机理,包括位错滑移、晶界介导的塑性、变形孪晶和马氏体相变,与前人研究一致;在柱状晶粒中,变形以孪晶为主,孪晶部分主要通过连续发射孪晶部分从晶界成核,并通过晶粒内部的点动成核增厚。当被晶界阻挡时,孪晶晶可能通过激活兼容的孪晶/滑移系统在晶界上产生连续的塑性应变,或者在相邻晶粒中没有兼容的孪晶/滑移系统的情况下导致晶间失效。多个孪生系统可以在同一晶粒中被激活,它们之间的竞争有利于那些能够在晶界上产生连续变形的孪生系统。

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