Cosserat crystal plasticity with dislocation-driven grain boundary migration

Q3 Engineering
A. Ask, S. Forest, B. Appolaire, K. Ammar
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引用次数: 6

Abstract

This paper discusses a coupled mechanics–phase-field model that can predict microstructure evolution in metallic polycrystals and in particular evolution of lattice orientation due to either deformation or grain boundary migration. The modeling framework relies on the link between lattice curvature and geometrically necessary dislocations and connects a micropolar or Cosserat theory with an orientation phase-field model. Some focus is placed on the underlying theory and in particular the theory of dislocations within a continuum single crystal plasticity setting. The model is finally applied to the triple junction problem for which there is an analytic solution if the grain boundary energies are known. The attention is drawn on the evolution of skew–symmetric stresses inside the grain boundary during migration.
位错驱动晶界迁移的Cosserat晶体塑性
本文讨论了一个力学-相场耦合模型,该模型可以预测金属多晶体中微观结构的演变,特别是由于变形或晶界迁移引起的晶格取向的演变。该建模框架依赖于晶格曲率和几何必要位错之间的联系,并将微极或Cosserat理论与取向相场模型联系起来。一些重点放在基础理论上,特别是在连续单晶塑性环境中的位错理论上。该模型最终应用于三结问题,如果晶界能量已知,则该问题存在解析解。重点研究了迁移过程中晶界内斜对称应力的演化。
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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来源期刊
Journal of Micromechanics and Molecular Physics
Journal of Micromechanics and Molecular Physics Materials Science-Polymers and Plastics
CiteScore
3.30
自引率
0.00%
发文量
27
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