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Phase-field model with plastic flow for grain growth in nanocrystalline material

机译:具有塑性流的纳米晶体材料中晶粒生长的相场模型

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摘要

A phase-field model is presented which considers the accumulation of structural defects in grain boundaries by an isotropic eigenstrain associated with the grain boundaries. It is demonstrated that the elastic energy caused by dilatation of the grain boundary with respect to the bulk crystal contributes largely to the grain boundary energy. The sign of this contribution can be both positive and negative dependent on the local stress state in the grain boundary. Self-diffusion of atoms is taken into account to relax the stress caused by the dilatation of the grain boundary. Application of the model to discontinuous grain growth in pure nanocrystalline cobalt material is presented. Linear grain growth is found in the nanocrystalline state, which is explained by the interpretation of grain boundary motion as a diffusive process defining an upper limit of the grain boundary velocity independent of the grain boundary curvature but dependent on temperature. The transition to regular grain growth at a critical temperature, as observed experimentally, is explained by the drop of theoretical grain boundary velocity due to its mean curvature during coarsening of the nanograin structure below the maximum velocity.
机译:提出了一种相场模型,该模型考虑了与晶界相关的各向同性本征应变在晶界中积累的结构缺陷。已经证明,由晶界相对于块状晶体的膨胀引起的弹性能在很大程度上有助于晶界能。取决于晶粒边界中的局部应力状态,这种贡献的符号可以是正的也可以是负的。考虑到原子的自扩散以缓和由晶界扩张引起的应力。介绍了该模型在纯纳米晶钴材料中不连续晶粒生长中的应用。线性晶粒生长以纳米晶态存在,这可以通过将晶界运动解释为扩散过程来解释,该扩散过程定义了晶界速度的上限,与晶界曲率无关,但取决于温度。通过实验观察到,在临界温度下向规则晶粒生长的过渡可以通过理论晶界速度的下降来解释,这是由于纳米晶粒结构在低于最大速度时的粗化过程中平均曲率所致。

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