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Deformation analysis of the long-period stacking-ordered phase by using molecular dynamics simulations: Kink deformation under compression and kink boundary migration under tensile strain

机译:使用分子动力学模拟分析长周期堆积有序相的变形:压缩下的扭结变形和拉伸应变下的扭结边界迁移

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摘要

The long-period stacking-ordered (LPSO) phase discovered in magnesium alloys is deformed upon the generation of a large number of unique deformation zones, which have no distinct orientation relationships at the deformation boundaries. These deformation zones are considered kink bands, but the mechanisms underlying their generation are not well understood. It has been suggested that the kink bands are responsible for the deformation of the LPSO phase, while simultaneously strengthening the material. In this study, the kink deformation process of the LPSO phase under compressive deformation was investigated through molecular dynamics (MD) simulations. The MD simulations showed that numerous prismatic 〈a〉 dislocations were nucleated first, which led to cross-slips towards various basal planes and caused kink deformation. This was followed by the nucleation and motion of a large number of basal dislocations, as well as kink deformations in tandem with the formation of kink bands, which occurred through another process. In addition, the individual dislocations were indistinguishable at kink boundaries. In other words, sharp boundaries were formed. Next, a simulation was performed that applied tensile strain to the model after the compressive deformation described above was implemented on it. This revealed that while kink boundaries with large misorientation angles intermittently migrated because of the tensile strain, the kink bands were not easily removed.
机译:在镁合金中发现的长周期堆积有序(LPSO)相在产生大量独特的变形区时发生变形,这些变形区在变形边界处没有明显的取向关系。这些变形区被认为是扭结带,但对其产生的机理尚不十分了解。已经提出,扭结带负责LPSO相的变形,同时增强了材料。在这项研究中,通过分子动力学(MD)模拟研究了压缩变形下LPSO相的扭结变形过程。 MD模拟显示,首先有许多棱柱形的位错成核,这导致向各种基面的横向滑动并引起扭结变形。其次是大量基底位错的形核和运动,以及扭结变形和扭结带的形成,这是通过另一个过程发生的。此外,各个位错在扭结边界处是无法区分的。换句话说,形成了清晰的边界。接下来,进行模拟,在其上执行上述压缩变形之后,将拉伸应变施加到模型上。这表明尽管具有大的取向差角的扭结边界由于拉伸应变而间歇地迁移,但是扭结带不容易去除。

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