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An analysis of the size effect on void growth in single crystals using discrete dislocation dynamics

机译:基于离散位错动力学的尺寸效应对单晶空隙生长的影响分析

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The effect of size on the mechanical behavior and the void growth rate in a voided single crystal was studied using two-dimensional discrete dislocation dynamics. The simulations were based on the methodology developed by Van der Giessen and Needleman Van der Giessen E, Needleman A. Modell Simul Mater Sci Eng 1995;3:689, which was extended to non-convex domains through the use of finite elements with embedded discontinuities Romero I, Segurado J, LLorca J. Modell Simul Mater Sci Eng 2008; 16:035008. Square crystals (in the range 0.5-2.5 mu m) with an initial void volume fraction of 10 percent were deformed under plane strain conditions in uniaxial tension, uniaxial deformation and biaxial deformation. The results of the simulations show two size effects, one on the initial flow stress and strain-hardening rate of the voided crystal ("smaller is stronger") and another on the void growth rate ("smaller is slower"). The magnitude of both size effects increased with triaxiality. The physical micromechanisms responsible for these size effects were elucidated from the simulation results.
机译:采用二维离散位错动力学研究了尺寸对空隙单晶力学行为和空隙生长速率的影响。模拟基于 Van der Giessen 和 Needleman 开发的方法 [Van der Giessen E, Needleman A. Modell Simul Mater Sci Eng 1995;3:689],通过使用嵌入不连续性的有限元扩展到非凸域 [Romero I, Segurado J, LLorca J. Modell Simul Mater Sci Eng 2008; 16:035008]。初始空隙体积分数为10%的方形晶体(在0.5-2.5μm范围内)在平面应变条件下在单轴拉伸、单轴变形和双轴变形下发生变形。模拟结果显示了两种尺寸效应,一种是针对空隙晶体的初始流动应力和应变硬化速率(“越小越强”),另一种是对空隙生长速率(“越小越慢”)。两种尺寸效应的幅度都随着三轴性的增加而增加。从仿真结果中阐明了造成这些尺寸效应的物理微观机制。

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