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Characteristic boundaries associated with three-dimensional twins in hexagonal metals

机译:与六边形金属三维双胞胎相关的特征界限

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摘要

Twinning is a critically important deformation mode in hexagonal close-packed metals. Twins are three-dimensional (3D) domains, whose growth is mediated by the motion of facets bounding the 3D twin domains and influences work hardening in metals. An understanding of twin transformations therefore necessitates that the atomic-scale structure and intrinsic mobilities of facets be known and characterized. The present work addresses the former point by systematically characterizing the boundary structures of 3D { 1 ˉ 012 } twins in magnesium using high-resolution transmission electron microscopy (HRTEM). Eight characteristic facets associated with twin boundaries are reported, five of which have never been experimentally observed before. Further, molecular dynamics simulations suggest that the formation and motion of these facets is associated with the accumulation of twinning dislocations. This work provides insights into understanding the structural character of 3D twins and serves to develop strategies for modulating twin kinetics by modifying twin boundaries, such as solute segregation.
机译:Twinning是六边形紧密填充金属中的一个批判性重要的变形模式。双胞胎是三维(3D)结构域,其生长是通过边界3D双域的小平面的运动来介导的,并且影响金属硬化的工作。因此,对双变换的理解需要,所知和表征面部的原子尺度结构和内在迁移率。通过系统地描述使用高分辨率透射电子显微镜(HRTEM)通过系统地表征镁中的3D {1°012}双胞胎的边界结构来解决前一个点。报告了与双界相关的八个特征刻,其中五个从未在实验上观察过。此外,分子动力学模拟表明,这些小平面的形成和运动与孪生脱位的积累有关。这项工作提供了解了解3D双胞胎的结构特征的见解,并通过改变双界,例如溶质隔离来制定用于调制双动力学的策略。

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