Recovery of Kink Boundaries During Post-Annealing of a Hot-Extruded Mg-Zn-Y Alloy

D. Egusa, K. Inoue, Y. Nagai, E. Abe
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Abstract

We have investigated post-annealing induced microscopic structural change of kink boundaries (KBs), which have been initially introduced by a hot-extrusion of an Mg-Zn-Y alloy containing long period stacking/order (LPSO) phase, based on scanning transmission electron microscopy (STEM) and atom-probe tomography (APT). STEM observations show that the KBs appear to be segmented into several submicron-scale, each of which is composed of arrays of extended basal (a-) dislocations that are geometrically necessary to account for the LPSO crystal rotations. Atomic-scale STEM/APT observations reveal significant reconstructions of these extended dislocation-core structures, which occur at the solute-enriched face-centered cubic (fcc) layers in the LPSO structures and forms local hexagonal close-packed (hcp) Mg region with distinct solute depletions. These recovery features indeed enhance the thermal stability of the KBs, and the corresponding driving force can be reasonably described according to disclinations, whose elastic energy is defined by crystal rotations and the relevant dipole distances.
热挤压Mg-Zn-Y合金退火后扭结边界的恢复
我们基于扫描透射电子显微镜(STEM)和原子探针断层扫描(APT)研究了退火后引起的扭结边界(KBs)的微观结构变化,这种微观结构变化最初是由含有长周期堆积/有序(LPSO)相的Mg-Zn-Y合金的热挤压引起的。STEM观测表明,KBs似乎被分割成几个亚微米尺度,每个亚微米尺度都由扩展的基底(a-)位错阵列组成,这些位错在几何上是解释LPSO晶体旋转所必需的。原子尺度的STEM/APT观测揭示了这些扩展位错核结构的显著重建,这些结构发生在LPSO结构中富含溶质的面心立方层(fcc),并形成具有明显溶质耗尽的局部六边形密排(hcp) Mg区。这些恢复特征确实增强了KBs的热稳定性,并且相应的驱动力可以根据偏差合理地描述,其弹性能由晶体旋转和相关的偶极子距离定义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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