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Phase-field modelling of martensitic transformation: The effects of grain and twin boundaries

机译:马氏体相变的相场建模:晶粒和孪晶边界的影响

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摘要

In this work, we present the non-linear elasto-plastic phase-field model and simulation of the martensitic transformation in a polycrystalline material including the effects of grain and twin boundaries. The phase-field microelasticity theory proposed by Khachaturyan is used to perform 2D and 3D simulations of fcc → bct martensitic transformation in a Fe-0.3%C polycrystalline alloy, incorporating the effect of both coherent and incoherent boundaries. The effect of plastic accommodation is also introduced into the model, by solving a time-dependent equation, during the solid-to-solid phase transformation. It is found that the given phase-field model, with the effect of grain boundaries, not only respects the morphological features of martensite but also conforms well with the physics of the problem. Different sets of simulations are performed to validate the model and it is concluded that the given model can correctly predict the evolution of the martensitic microstructure in a polycrystal, as opposed to previous models where the effects of grain and twin boundaries are neglected.
机译:在这项工作中,我们提出了一种非线性弹塑性相场模型和一种多晶材料中马氏体相变的模拟,包括晶粒和孪晶边界的影响。 Khachaturyan提出的相场微弹性理论用于在Fe-0.3%C多晶合金中进行fcc→bct马氏体相变的2D和3D模拟,并结合了相干边界和非相干边界的影响。在固-固相变过程中,通过求解与时间有关的方程,还将塑性适应的影响引入模型中。研究发现,给定的相场模型在晶界的影响下,不仅尊重马氏体的形貌特征,而且与问题的物理性质相吻合。进行了不同组的仿真以验证模型,并得出结论,与忽略晶粒和孪晶边界影响的先前模型相反,给定模型可以正确预测多晶马氏体微观结构的演变。

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