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The shear response of copper bicrystals with Σ11 symmetric and asymmetric tilt grain boundaries by molecular dynamics simulation

机译:用分子动力学模拟研究了具有Σ11对称和非对称倾斜晶界的铜双晶的剪切响应

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摘要

Grain boundaries (GBs) are important microstructure features and can significantly affect the properties of nanocrystalline materials. Molecular dynamics simulation was carried out in this study to investigate the shear response and deformation mechanisms of symmetric and asymmetric Σ11 tilt GBs in copper bicrystals. Different deformation mechanisms were reported, depending on GB inclination angles and equilibrium GB structures, including GB migration coupled to shear deformation, GB sliding caused by local atomic shuffling, and dislocation nucleation from GB. The simulation showed that migrating Σ11(1 1 3) GB under shear can be regarded as sliding of GB dislocations and their combination along the boundary plane. A non-planar structure with dissociated intrinsic stacking faults was prevalent in Σ11 asymmetric GBs of Cu. This type of structure can significantly increase the ductility of bicrystal models under shear deformation. A grain boundary can be a source of dislocation and migrate itself at different stress levels. The intrinsic free volume involved in the grain boundary area was correlated with dislocation nucleation and GB sliding, while the dislocation nucleation mechanism can be different for a grain boundary due to its different equilibrium structures.
机译:晶界(GBS)是重要的微观结构特征,可显着影响纳米晶体材料的性质。在该研究中进行了分子动力学模拟,研究了铜双晶中对称和不对称σ11倾斜GBS的剪切响应和变形机制。报告了不同的变形机制,取决于GB倾斜角度和平衡GB结构,包括耦合到剪切变形的GB迁移,由局部原子混洗引起的GB滑动,以及来自GB的位错核。模拟显示,剪切下的迁移σ11(113)Gb可以被认为是Gb位错的滑动及其沿边界平面的组合。具有解离本征堆叠故障的非平面结构在σ11不对称GBS中普遍存在Cu的。这种类型的结构可以显着提高剪切变形下双晶体模型的延展性。晶界可以是位错源,并在不同的压力水平下迁移自身。晶界区域中涉及的内在自由量与位移成核和Gb滑动相关,而脱位核机构可以不同于由于其不同的平衡结构而不同。

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