Abnormal interactions between high-speed edge dislocation and microvoid in BCC metals

材料科学 位错 皮尔斯应力 张力(地质) GSM演进的增强数据速率 临界切应力 剪切(地质) 滑翔机 位错蠕变 剪应力 机械 阻力 凝聚态物理 复合材料 物理 极限抗拉强度 剪切速率 流变学 电信 计算机科学
作者
Qifan Bao,Minsheng Huang,Yaxin Zhu,Lv Zhao,Zhenhuan Li
出处
期刊:International Journal of Plasticity [Elsevier BV]
卷期号:148: 103125-103125 被引量:21
标识
DOI:10.1016/j.ijplas.2021.103125
摘要

The interaction between a high speed edge dislocation and a microvoid has been investigated by molecular dynamics (MD) simulations in BCC crystals of Ta, Fe, V and W in the present work. The focus is placed on the dynamic effect on the dislocation-microvoid interaction. Three interaction scenarios different from static cases, i.e., repeated dislocation oscillations around microvoids, dislocation depinning from microvoid like releasing an elastic slingshot, and formation of abnormal “pull forward” dislocation configuration, have been found for the first time. The “repeated oscillations” can be attributed to the dislocation line tension and dynamic effect, which is analogous to under-damped mechanical oscillator system. For the “releasing slingshot” case, the dislocation first bows out after breaking away from the microvoid, and then a stable “drag backward” dislocation configuration is formed. When further increasing the applied shear stress, the dislocation can accelerate to subsonic speed of roughly0.7CT, with CT being the transverse sound speed, leading to a stable “pull forward” configuration. These different dislocation configurations are closely related to the formation of superjog driven by the dislocation-microvoid interaction. By careful analysis, it is found that the variation of relative mobility between the original edge dislocation on the (110) plane and the superjog segments on the (112) plane with shear stresses perfectly coincides with the above three dislocation configurations. In fact, when the applied shear stress is high enough and the dislocation speed is subsonic, the friction stress on the superjog segments turns to be smaller than that of the original edge dislocation, resulting in the formation of abnormal “pull forward” configuration.
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