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Singular orientations and faceted motion of dislocations in body-centered cubic crystals

机译:体心立方晶体中位错的奇异取向和分面运动

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Dislocation mobility is a fundamental material property that controls strength and ductility of crystals. An important measure of dislocation mobility is its Peierls stress, i.e., the minimal stress required to move a dislocation at zero temperature. Here we report that, in the body-centered cubic metal tantalum, the Peierls stress as a function of dislocation orientation exhibits fine structure with several singular orientations of high Peierls stress-stress spikes-surrounded by vicinal plateau regions. While the classical Peierls-Nabarro model captures the high Peierls stress of singular orientations, an extension that allows dislocations to bend is necessary to account for the plateau regions. Our results clarify the notion of dislocation kinks as meaningful only for orientations within the plateau regions vicinal to the Peierls stress spikes. These observations lead us to propose a Read-Shockley type classification of dislocation orientations into three distinct classes-special, vicinal, and general-with respect to their Peierls stress and motion mechanisms. We predict that dislocation loops expanding under stress at sufficiently low temperatures, should develop well defined facets corresponding to two special orientations of highest Peierls stress, the screw and the M111 orientations, both moving by kink mechanism. We propose that both the screw and the M111 dislocations are jointly responsible for the yield behavior of BCC metals at low temperatures.
机译:位错迁移率是控制晶体强度和延展性的基本材料特性。位错迁移率的重要度量是其Peierls应力,即在零温度下移动位错所需的最小应力。在这里,我们报道,在以体心为中心的立方金属钽中,Peierls应力作为位错取向的函数表现出精细的结构,并具有几个高的Peierls应力-应力尖峰的奇异取向,这些峰由邻近的高原地区包围。虽然经典的Peierls-Nabarro模型捕获了奇异取向的高Peierls应力,但需要考虑到高原区域,需要允许位错弯曲的延伸。我们的结果阐明了位错纠结的概念仅对与Peierls应力峰值相邻的高原区域内的方向有意义。这些发现使我们提出了关于Peierls应力和运动机制的位错取向的Read-Shockley类型分类,分为三类:特殊,邻近和普通。我们预测,在足够低的温度下在应力作用下膨胀的位错环应发展出明确定义的刻面,这些刻面对应于最高Peierls应力的两个特殊方向,即螺钉和M111方向,均通过扭结机制运动。我们建议,螺钉和M111位错共同负责低温下BCC金属的屈服行为。

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