Gao Yipeng, Wang Yunzhi, Zhang Yongfeng
Department of Fuel Modeling and Simulation, Idaho National Laboratory, 2525 Fremont Avenue, Idaho Falls, Idaho 83415, USA.
Department of Materials Science and Engineering, Ohio State University, 2041 College Road, Columbus, Ohio 43210, USA.
IUCrJ. 2019 Jan 1;6(Pt 1):96-104. doi: 10.1107/S2052252518017050.
The generation and motion of crystalline defects during plastic deformation are critical processes that determine the mechanical properties of a crystal. The types of defect generated are not only related to the symmetry of a crystal but also associated with the symmetry-breaking process during deformation. Proposed here is a new mathematical framework to capture the intrinsic coupling between crystal symmetry and deformation-induced symmetry breaking. Using a combination of group theory and graph theory, a general approach is demonstrated for the systematic determination of the types of crystalline defect induced by plastic deformation, through the construction of a crystal deformation group and a deformation pathway graph. The types of defect generated in the deformation of a face-centered cubic crystal are analyzed through the deformation pathway graph and compared with experimental observations.
塑性变形过程中晶体缺陷的产生和运动是决定晶体力学性能的关键过程。所产生的缺陷类型不仅与晶体的对称性有关,还与变形过程中的对称性破缺过程相关。本文提出了一个新的数学框架,以捕捉晶体对称性与变形诱导对称性破缺之间的内在耦合。通过结合群论和图论,展示了一种通用方法,通过构建晶体变形群和变形路径图,系统地确定塑性变形诱导的晶体缺陷类型。通过变形路径图分析了面心立方晶体变形中产生的缺陷类型,并与实验观察结果进行了比较。