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Robust atomistic calculation of dislocation line tension

机译:位错线张力的稳健原子计算

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The line tension Gamma of a dislocation is an important and fundamental property ubiquitous to continuum scale models of metal plasticity. However, the precise value of Gamma in a given material has proven difficult to assess, with literature values encompassing a wide range. Here results from a multiscale simulation and robust analysis of the dislocation line tension, for dislocation bow-out between pinning points, are presented for two widely-used interatomic potentials for Al. A central part of the analysis involves an effective Peierls stress applicable to curved dislocation structures that markedly differs from that of perfectly straight dislocations but is required to describe the bow-out both in loading and unloading. The line tensions for the two interatomic potentials are similar and provide robust numerical values for Al. Most importantly, the atomic results show notable differences with singular anisotropic elastic dislocation theory in that (i) the coefficient of the ln(L) scaling with dislocation length L differs and (ii) the ratio of screw to edge line tension is smaller than predicted by anisotropic elasticity. These differences are attributed to local dislocation core interactions that remain beyond the scope of elasticity theory. The many differing literature values for Gamma are attributed to various approximations and inaccuracies in previous approaches. The results here indicate that continuum line dislocation models, based on elasticity theory and various core-cut-off assumptions, may be fundamentally unable to reproduce full atomistic results, thus hampering the detailed predictive ability of such continuum models.
机译:位错的线张力Gamma是金属可塑性的连续尺度模型普遍存在的重要且基本的特性。但是,事实证明,给定材料中Gamma的精确值难以评估,文献值涵盖范围很广。在这里,我们针对两种广泛使用的Al原子间电势,从位错线张力的多尺度模拟和稳健分析结果中得出了钉扎点之间的位错屈曲的结果。分析的中心部分涉及有效的Peierls应力,该应力适用于弯曲位错结构,该应力明显不同于完全笔直的位错,但需要描述加载和卸载时的弯曲。两个原子间电势的线张力相似,并且为Al提供了可靠的数值。最重要的是,原子结果显示出与奇异各向异性弹性位错理论的显着差异,因为(i)随着位错长度L的ln(L)缩放系数不同,并且(ii)螺钉与边缘线张力之比小于预期通过各向异性弹性。这些差异归因于局部位错核心相互作用,而这些相互作用仍然超出了弹性理论的范围。 Gamma的许多不同文献价值归因于先前方法中的各种近似值和不准确性。此处的结果表明,基于弹性理论和各种核心截止假设的连续谱线位错模型可能从根本上无法再现完整的原子结果,从而妨碍了此类连续谱模型的详细预测能力。

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