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A predictive model for transferability of plastic deformation through grain boundaries

机译:塑性变形通过晶界传递性的预测模型

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The material strengths of polycrystalline metals have been widely predicted according to the grain size, where yield stress is governed by slip transfer through the grain boundary(GB). The transferability of a dislocation across a GB is enormously important in the deformation process as well as the interaction between a dislocation and GB. This paper proposes a new criterion for the transferability of dislocations through a GB that considers both the intergranular crystallographic orientation of slip systems and the applied stress condition. Atomistic simulations were carried out to investigate the slip transfer event of simple bicrystals composed of Σ3(1?12)GB than Σ3(1?11) GBs under uniaxial deformation and to illustrate the availability of this criterion. As a result, in contrast to the predictions of conventional criteria such as the M-value, dislocations propagated more easily across the Σ3(1?11) and Σ3(1?12)GB under given stress states, reflecting a larger L′-value of Σ3 bicrystal associated with higher transferability.
机译:已经根据晶粒尺寸广泛预测了多晶金属的材料强度,其中屈服应力由通过晶界(GB)的滑移传递控制。位错在GB上的可传递性在变形过程以及位错与GB之间的相互作用中非常重要。本文提出了一种通过GB的位错传递能力的新标准,该标准考虑了滑移体系的晶间晶体取向和所施加的应力条件。进行了原子模拟,研究了单轴变形下由Σ3(1?12)GBs比Σ3(1?11)GBs组成的简单双晶的滑移事件,并证明了该准则的有效性。结果,与传统标准(例如M值)的预测相反,位错在给定应力状态下更容易在Σ3(1?11)和Σ3(1?12)GB上传播,反映出更大的L'- Σ3双晶硅的值与较高的可转移性相关。

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