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Length scales and scale-free dynamics of dislocations in dense solid solutions

机译:密度固体溶液中脱位的长度尺度和无比例动态

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The fundamental interactions between an edge dislocation and a random solid solution are studied by analyzing dislocation line roughness profiles obtained from molecular dynamics simulations of Fe0.70Ni0.11Cr0.19 over a range of stresses and temperatures. These roughness profiles reveal the hallmark features of a depinning transition. Namely, below a temperature-dependent critical stress, the dislocation line exhibits roughness in two different length scale regimes which are divided by a so-called correlation length. This correlation length increases with applied stress and at the critical stress (depinning transition or yield stress) formally goes to infinity. Above the critical stress, the line roughness profile converges to that of a random noise field. Motivated by these results, a physical model is developed based on the notion of coherent line bowing over all length scales below the correlation length. Above the correlation length, the solute field prohibits such coherent line bow outs. Using this model, we identify potential gaps in existing theories of solid solution strengthening and show that recent observations of length-dependent dislocation mobilities can be rationalized.
机译:通过分析在一系列压力和温度范围内的分子动力学模拟的分子动力学模拟中获得的位错线粗糙度曲线来研究边缘位错和随机固体溶液之间的基本相互作用。这些粗糙度概况显示了脱落过渡的标志特征。即,低于温度依赖性的临界应力,位错线在两种不同的长度尺度方案中表现出粗糙度,其除以所谓的相关长度。这种相关长度随着施加的应力和临界应力(分解过渡或屈服应力)正式进入无穷大。在临界应力之上,线粗糙度分布会聚到随机噪声场的粗糙度。通过这些结果的激励,基于在相关长度低于相关长度的所有长度尺度上弯曲的相干线弯曲的概念开发了物理模型。高于相关长度,溶质字段禁止这种相干线膨胀。使用此模型,我们识别现有的固体解决方案理论中的潜在差距,并表明最近的长度依赖性脱位迁移率观察可以合理化。

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