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A two-dimensional dislocation dynamics model of the plastic deformation of polycrystalline metals

机译:多晶金属塑性变形的二维位错动力学模型

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Two-dimensional dislocation dynamics (2D-DD) simulations under fully periodic boundary conditions are employed to study the relation between microstructure and strength of a material. The material is modeled as an elastic continuum that contains a defect microstructure consisting of a preexisting dislocation population, dislocation sources, and grain boundaries. The mechanical response of such a material is tested by uniaxially loading it up to a certain stress and allowing it to relax until the strain rate falls below a threshold. The total plastic strain obtained for a certain stress level yields the quasi-static stress-strain curve of the material. Besides assuming Frank-Read-like dislocation sources, we also investigate the influence of a pre-existing dislocation density on the flow stress of the model material. Our results show that - despite its inherent simplifications - the 2D-DD model yields material behavior that is consistent with the classical theories of Taylor and Hall-Petch. Consequently, if set up in a proper way, these models are suited to study plastic deformation of polycrystalline materials.
机译:利用全周期边界条件下的二维位错动力学(2D-DD)模拟来研究材料的微观结构与强度之间的关系。该材料被建模为一个弹性的连续体,其中包含一个缺陷的微观结构,该缺陷的微观结构由预先存在的位错族,位错源和晶界组成。通过单轴加载高达一定应力并使其松弛直至应变速率降至阈值以下,来测试这种材料的机械响应。在一定应力水平下获得的总塑性应变会得出材料的准静态应力-应变曲线。除了假定类似Frank-Read的位错源,我们还研究了预先存在的位错密度对模型材料流动应力的影响。我们的结果表明,尽管有固有的简化,但2D-DD模型产生的材料行为与Taylor和Hall-Petch的经典理论一致。因此,如果以适当的方式进行设置,这些模型将适合于研究多晶材料的塑性变形。

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