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A Study of Strain-Driven Nucleation and Extension of Deformed Grain: Phase Field Crystal and Continuum Modeling

机译:应变驱动形变和晶粒扩展的研究:相场晶体和连续谱模型

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摘要

The phase-field-crystal (PFC) method is used to investigate migration of grain boundary dislocation and dynamic of strain-driven nucleation and growth of deformed grain in two dimensions. The simulated results show that the deformed grain nucleates through forming a gap with higher strain energy between the two sub-grain boundaries (SGB) which is split from grain boundary (GB) under applied biaxial strain, and results in the formation of high-density ensembles of cooperative dislocation movement (CDM) that is capable of plastic flow localization (deformed band), which is related to the change of the crystal lattice orientation due to instability of the orientation. The deformed grain stores the strain energy through collective climbing of the dislocation, as well as changing the orientation of the original grain. The deformed grain growth (DGG) is such that the higher strain energy region extends to the lower strain energy region, and its area increase is proportional to the time square. The rule of the time square of the DGG can also be deduced by establishing the dynamic equation of the dislocation of the strain-driven SGB. The copper metal is taken as an example of the calculation, and the obtained result is a good agreement with that of the experiment.
机译:相场晶体(PFC)方法用于二维研究晶界错位的迁移和应变驱动形核的动态以及变形晶粒的生长。仿真结果表明,变形的晶粒通过在两个双晶界(SGB)之间形成一个具有较高应变能的缝隙而成核,该缝隙在施加双轴应变的作用下从晶界(GB)分裂而来,并导致形成高密度能够进行塑性流定位(变形带)的协作位错运动(CDM)的集合,这与由于晶格取向的不稳定性而导致的晶格取向变化有关。变形的晶粒通过位错的集体爬升以及改变原始晶粒的方向来存储应变能。变形晶粒生长(DGG)使得较高的应变能区域扩展到较低的应变能区域,并且其面积增加与时间平方成比例。也可以通过建立应变驱动SGB的位错动力学方程来推导DGG的时间平方规则。以铜金属为例进行计算,所得结果与实验结果吻合良好。

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