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Theory and simulation of coupled grain boundary migration and grain rotation in low angle grain boundaries

机译:低角度晶界耦合晶晶边界迁移和晶粒旋转的理论与仿真

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Microstructure evolution due to coupled grain boundary migration and grain rotation in low angle grain boundaries is studied through a combination of molecular dynamics and phase field modeling. We have performed two dimensional molecular dynamics simulations on a bicrystal with a circular grain embedded in a larger grain. Both size and orientation of the embedded grain are observed to evolve with time. The shrinking embedded grain is observed to have two regimes: constant dislocation density on the grain boundary followed by constant rate of increase in dislocation density. Based on these observations from the molecular dynamics simulations, a theoretical formulation of the kinetics of coupled grain rotation is developed. The grain rotation rate is derived for the two regimes of constant dislocation density and constant rate of change of dislocation density on the grain boundary during evolution. The theoretical calculation of the grain rotation rate shows strong dependence on the grain size and compares very well with the molecular dynamics simulations. A multiorder parameter based phase field model with coupled grain rotation is developed using the theoretical formulation to model polycrystalline microstructure evolution.
机译:通过分子动力学和相场造型的组合研究了低角度晶界中耦合晶界迁移和晶粒旋转引起的微观结构演化。我们在双晶体上进行了二维分子动力学模拟,其中圆形颗粒嵌入更大的晶粒中。观察到嵌入晶粒的尺寸和定向随时间发展。观察到收缩的嵌入颗粒具有两个制度:晶粒边界上的恒定位错密度,然后恒定的位错密度增加速率。基于来自分子动力学模拟的这些观察结果,开发了耦合晶粒旋转动力学的理论配方。谷物旋转速率用于恒定位错密度的两个制度和进化期间晶界畸形密度的恒定变化率。晶粒旋转速率的理论计算显示了对晶粒尺寸的强烈依赖性,并与分子动力学模拟相比非常好。利用理论配方开发了一种具有耦合晶粒旋转的多功能参数的相场模型,以模拟多晶微观结构演化。

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