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Direct prediction of the solute softening-to-hardening transition in W-Re alloys using stochastic simulations of screw dislocation motion

机译:利用螺杆脱位运动随机模拟直接预测W-RE合金中的溶质软化与硬化过渡

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摘要

Interactions among dislocations and solute atoms are the basis of several important processes in metal plasticity. In body-centered cubic (bcc) metals and alloys, low-temperature plastic flow is controlled by screw dislocation glide, which is known to take place by the nucleation and sideward relaxation of kink pairs across two consecutive Peierls valleys. In alloys, dislocations and solutes affect each other's kinetics via long-range stress field coupling and short-range inelastic interactions. It is known that in certain substitutional bcc alloys a transition from solute softening to solute hardening is observed at a critical concentration. In this paper, we develop a kinetic Monte Carlo model of screw dislocation glide and solute diffusion in substitutional W-Re alloys. We find that dislocation kinetics is governed by two competing mechanisms. At low solute concentrations, nucleation is enhanced by the softening of the Peierls stress, which dominates over the elastic repulsion of Re atoms on kinks. This trend is reversed at higher concentrations, resulting in a minimum in the flow stress that is concentration and temperature dependent. This minimum marks the transition from solute softening to hardening, which is found to be in reasonable agreement with experiments.
机译:脱位和溶质原子之间的相互作用是金属塑性的几个重要过程的基础。在以身体为中心的立方(BCC)金属和合金中,通过螺杆位错滑动控制低温塑料流动,已知在两个连续的Peierls山谷中通过核切割和侧向松弛进行扭结和侧向松弛。在合金中,脱位和溶质通过远程应力场耦合和短程非弹性相互作用影响彼此的动力学。众所周知,在某些取代的BCC合金中,在临界浓度下观察到从溶质软化到溶质硬化的过渡。在本文中,我们开发了一种动力学蒙特卡罗模型的螺杆位错滑动,溶质扩散在取代的W重孔中。我们发现脱位动力学受到两个竞争机制的管辖。在低溶质浓度下,通过对PEIERLS应激的软化来增强成核,这主要占据扭结上的RE原子的弹性排斥。这种趋势在较高浓度下逆转,导致流量应力的最小浓度和温度依赖性。该最小值标志着从溶质软化到硬化的过渡,这被发现与实验合理一致。

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