材料科学
波纹度
位错
分子动力学
临界切应力
剪应力
叠加断层
嵌入原子模型
凝聚态物理
滑翔机
皮尔斯应力
可塑性
结晶学
分子物理学
化学物理
部分位错
打滑(空气动力学)
成核
位错蠕变
热力学
复合材料
计算化学
物理
化学
剪切速率
粘度
作者
Nikolay Zotov,Blazej Grabowski
标识
DOI:10.1088/1361-651x/ac2b02
摘要
Abstract The screw dislocation mobility in bcc Nb has been studied by molecular dynamics (MD) simulations at different strain rates and temperatures using an embedded-atom method (EAM) potential. Static properties of the screw dislocation, as determined with the EAM potential, are in agreement with previous density-functional-theory calculations. The elementary slip plane of the screw dislocation remains (110) for all studied strain rates (in the range 6.3 × 10 7 –6.3 × 10 9 s −1 ) and temperatures (5 to 550 K). However, the consecutive cross-slip on different symmetry-equivalent (110) planes leads to an effective glide on (112) planes. It is demonstrated that the screw dislocation trajectories, velocities and waviness of the screw dislocation depend on the crystallographic indices, (110) or (112), of the maximum resolved shear stress plane. The waiting time for the start of the screw dislocation motion increases exponentially with decreasing strain rate, substantiating the necessity to apply in future accelerated MD techniques in order to compare with macroscopic stress-strain experiments.
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