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首页> 外文期刊>Modelling and simulation in materials science and engineering >Interplanar potential for tension-shear coupling at grain boundaries derived from ab initio calculations
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Interplanar potential for tension-shear coupling at grain boundaries derived from ab initio calculations

机译:从头算计算得出的晶界处张力-剪切耦合的面间电位

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Based on ab initio density functional theory (DFT) calculations we derive an analytical expression for the interplanar potential of grain boundaries and single crystals as a function of coupled tensile and shear displacements. This energy function captures even details of the grain boundary behaviour, such as the tensions-oftening of the shear instability of aluminium grain boundaries, with good accuracy. The good agreement between the analytical model and the DFT calculations is achieved by introducing two new characteristic parameters, namely the position of the generalised unstable stacking fault with respect to the stable stacking fault, and the ratio of stable and unstable generalised stacking fault energies. One of the potentials' parameters also serves as a criterion to judge if a grain boundary deforms via crack propagation or dislocation nucleation. We suggest this potential function for application in continuum models, where constitutive relationships for grain boundaries need to be derived from a sound physical model.
机译:基于从头算密度泛函理论(DFT)的计算,我们得出了晶界和单晶的面内电势作为拉伸和剪切位移耦合函数的解析表达式。这种能量函数甚至可以精确地捕获晶界行为的细节,例如铝晶界的剪切不稳定性的张力。通过引入两个新的特征参数,即广义不稳定堆垛层错相对于稳定堆垛层错的位置,以及稳定堆垛层错能与不稳定广义堆垛层错能量之比,可以使分析模型与DFT计算取得良好的一致性。势能的参数之一也用作判断晶界是否由于裂纹扩展或位错成核而变形的标准。我们建议将此功能应用于连续模型,其中需要从合理的物理模型中得出晶界的本构关系。

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