六方密排金属中孪晶的扩散:在镁中的应用

IF 6 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
D. Sun , M. Ponga , K. Bhattacharya , M. Ortiz
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引用次数: 26

摘要

金属合金的塑性变形通常通过滑移发生,但偶尔也会发生孪生。特别是,在六边形紧密堆积(HCP)材料中,易滑移系统不足以容纳任意变形,孪生是重要的。虽然滑移机制引起的变形已经被很好地理解,但相对而言,孪生引起的变形所知较少。事实上,识别相关的孪生模式仍然是一门艺术。在本文中,我们开发了一个框架,结合了孪生的基本运动学定义和大规模原子计算来预测晶体材料的孪生模式。我们将这一框架应用于镁,其中有两种公认的双模,张力和压缩,但有一些反常的观察。值得注意的是,我们的框架表明,镁中存在大量重要的孪生模式。因此,与传统观点相反,塑性变形是在几个模式之间进行运动学划分的,我们的研究结果表明,HCP材料的变形是许多可能性之间的能量和动力学竞争的结果。因此,我们的研究结果表明,常用的变形模型需要扩展,以便考虑到更广泛和更丰富的双模态,这反过来又为改善机械性能开辟了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Proliferation of twinning in hexagonal close-packed metals: Application to magnesium

Plastic deformation of metallic alloys usually takes place through slip, but occasionally involves twinning. In particular, twinning is important in hexagonal close packed (HCP) materials where the easy slip systems are insufficient to accommodate arbitrary deformations. While deformation by slip mechanisms is reasonably well understood, comparatively less is known about deformation by twinning. Indeed, the identification of relevant twinning modes remains an art. In this paper, we develop a framework combining a fundamental kinematic definition of twins with large-scale atomistic calculations to predict twinning modes of crystalline materials. We apply this framework to magnesium where there are two accepted twin modes, tension and compression, but a number of anomalous observations. Remarkably, our framework shows that there is a very large number of twinning modes that are important in magnesium. Thus, in contrast to the traditional view that plastic deformation is kinematically partitioned between a few modes, our results suggest that deformation in HCP materials is the result of an energetic and kinetic competition between numerous possibilities. Consequently, our findings suggest that the commonly used models of deformation need to be extended in order to take into account a broader and richer variety of twin modes, which, in turn, opens up new avenues for improving the mechanical properties.

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来源期刊
Journal of The Mechanics and Physics of Solids
Journal of The Mechanics and Physics of Solids 物理-材料科学:综合
CiteScore
9.80
自引率
9.40%
发文量
276
审稿时长
52 days
期刊介绍: The aim of Journal of The Mechanics and Physics of Solids is to publish research of the highest quality and of lasting significance on the mechanics of solids. The scope is broad, from fundamental concepts in mechanics to the analysis of novel phenomena and applications. Solids are interpreted broadly to include both hard and soft materials as well as natural and synthetic structures. The approach can be theoretical, experimental or computational.This research activity sits within engineering science and the allied areas of applied mathematics, materials science, bio-mechanics, applied physics, and geophysics. The Journal was founded in 1952 by Rodney Hill, who was its Editor-in-Chief until 1968. The topics of interest to the Journal evolve with developments in the subject but its basic ethos remains the same: to publish research of the highest quality relating to the mechanics of solids. Thus, emphasis is placed on the development of fundamental concepts of mechanics and novel applications of these concepts based on theoretical, experimental or computational approaches, drawing upon the various branches of engineering science and the allied areas within applied mathematics, materials science, structural engineering, applied physics, and geophysics. The main purpose of the Journal is to foster scientific understanding of the processes of deformation and mechanical failure of all solid materials, both technological and natural, and the connections between these processes and their underlying physical mechanisms. In this sense, the content of the Journal should reflect the current state of the discipline in analysis, experimental observation, and numerical simulation. In the interest of achieving this goal, authors are encouraged to consider the significance of their contributions for the field of mechanics and the implications of their results, in addition to describing the details of their work.
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