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Plastic anisotropy and dislocation trajectory in BCC metals

机译:BCC金属中的塑性各向异性和位错轨迹

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摘要

Plasticity in body-centred cubic (BCC) metals at low temperatures is atypical, marked in particular by an anisotropic elastic limit in clear violation of the famous Schmid law applicable to most other metals. This effect is known to originate from the behaviour of the screw dislocations; however, the underlying physics has so far remained insufficiently understood to predict plastic anisotropy without adjustable parameters. Here we show that deviations from the Schmid law can be quantified from the deviations of the screw dislocation trajectory away from a straight path between equilibrium configurations, a consequence of the asymmetrical and metal-dependent potential energy landscape of the dislocation. We propose a modified parameter-free Schmid law, based on a projection of the applied stress on the curved trajectory, which compares well with experimental variations and first-principles calculations of the dislocation Peierls stress as a function of crystal orientation.
机译:低温下,以人体为中心的立方(BCC)金属的可塑性是非典型的,尤其以各向异性弹性极限为标志,明显违反适用于大多数其他金属的著名的施密德定律。众所周知,这种影响是由于螺钉位错的行为引起的。然而,到目前为止,对基础物理学的了解还不足以预测没有可调整参数的塑性各向异性。在这里,我们表明,可以通过螺钉位错轨迹偏离平衡构型之间的直线路径来量化偏离Schmid定律的结果,这是位错的不对称和金属依赖性势能态的结果。我们基于在弯曲轨迹上施加的应力投影,提出了修正的无参数施密德定律,该定律与实验变化和位错Peierls应力作为晶体取向的函数的第一性原理计算很好地比较。

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