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Effect of slip transmission at grain boundaries in Al bicrystals

机译:滑动传递对Al Bicrystals晶界的影响

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The effect of slip transfer on the deformation mechanisms of Al bicrystals was explored using a rate-dependent dislocation-based crystal plasticity model. Three different types of grain boundaries (GBs) were included in the model by modifying the rate of dislocation accumulation near the GB in the Kocks-Mecking law, leading to fully-opaque (dislocation blocking), fully-transparent and partially-transparent GBs. In the latter, slip transmission is only allowed in pairs of slip systems (SS) in neighbour grains that are suitably oriented for slip transfer according to the Luster-Morris parameter. Modifications of the GB character led to important changes in the deformation mechanisms at the GB. In general, bicrystals with fully-opaque (dislocation blocking) boundaries showed an increase in the dislocation density near the GB, which was associated with an increase in the Von Mises stress. In contrast, the dislocation pile-ups and the stress concentration were less pronounced in the case of partially-transparent boundaries as the slip in one grain can progress into the next grain with some degree of continuity. No stress concentrations were found at these boundaries for fully-transparent boundaries, and there was continuity of strain across the boundary, which is not typical of most experimentally observed GBs (Hemery et al., 2018; Bieler et al., 2019). Simulations of ideal bicrystals oriented for favorable slip transfer on the most highly favored slip system in grains with high Schmid factors for slip transfer depends on the number of active SS in operation in the neighborhood indicating that most boundaries will lead to nearly opaque conditions while some boundaries will be transparent. Finally, the model was applied to a particular experimentally observed GB in which slip transfer was clearly operating indicating that the model predicted a nearly transparent GB.
机译:利用速率依赖性位错的晶体塑性模型探讨了滑动转移对Al双晶的变形机制的影响。通过修改KOCKS-MECKING法中GB附近的位错积累速率,将三种不同类型的晶界(GBS)包括在模型中,导致完全不透明(位错阻断),完全透明和部分透明的GBS。在后者中,仅在相邻颗粒中成对的滑动系统(SS)成对的滑动系统适当地允许,其适合于根据光泽-Morris参数进行滑动传输。 GB角色的修改导致GB变形机制的重要变化。通常,具有完全不透明的(位错阻断)边界的BicryStAGAS显示GB附近的位错密度的增加,这与Von Mises应激的增加相关。相比之下,在部分透明边界的情况下,脱位堆积和应力浓度在一个颗粒中的滑动可以进入下一个晶粒时具有一定程度的连续性。在这些边界中没有发现应激浓度,以完全透明的边界,并且跨越边界的应变的连续性,这不是最典型的大多数实验观察到的GBS(Hemery等,2018; Bieler等,2019)。在具有高脊髓因子的谷物中最受欢迎的滑动系统的理想双手仿真的模拟取决于邻域中操作中的活性SS的数量,表明大多数界限将导致几乎不透明的条件将是透明的。最后,该模型应用于特定的实验观察到的GB,其中滑动传递明显地操作,表明模型预测了几乎透明的GB。

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