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Geometrically projected discrete dislocation dynamics

机译:几何投射离散位错动态

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Three-dimensional discrete dislocation dynamics methods (3D-DDD) have been developed to explicitly track the motion of individual dislocations under applied stress. At present, these methods are limited to plastic strains of about one percent or less due to high computational cost associated with the interactions between large numbers of dislocations. This limitation motivates the construction of minimalistic approaches to efficiently simulate the motion of dislocations for higher strains and longer time scales. In the present study, we propose geometrically projected discrete dislocation dynamics (GP-DDD), a method in which dislocation loops are modeled as geometrical objects that maintain their shape with a constant number of degrees of freedom as they expand. We present an example where rectangles composed of two screw and two edge dislocation segments are used for modeling gliding dislocation loops. We use this model to simulate single slip loading of copper and compare the results with detailed 3D-DDD simulations. We discuss the regimes in which GP-DDD is able to adequately capture the variation of the flow stress with strain rate in the single slip loading condition. A simulation using GP-DDD requires similar to 40 times fewer degrees of freedom for a copper single slip loading case, thus reducing computational time and complexity.
机译:已经开发了三维离散位错动力学方法(3D-DDD)以明确地跟踪应用应力下的单个位错的运动。目前,由于与大量脱位之间的相互作用相关的高计算成本,这些方法限于塑性菌株约1%或更小。该限制激励了施工,以有效地模拟较高菌株和较长时间尺度的脱位运动的结构。在本研究中,我们提出了几何投影的离散位错动态(GP-DDD),一种方法,其中位错环被建模为几何物体,其在膨胀时保持其具有恒定的自由度的形状。我们提出了一个示例,其中由两个螺钉和两个边缘位错段组成的矩形用于建模滑动位错环。我们使用此模型来模拟铜的单滑载负载,并将结果与​​详细的3D-DDD模拟进行比较。我们讨论了GP-DDD能够充分捕获流量应力在单滑载负载条件下具有应变速率的变化的制度。使用GP-DDD的模拟需要类似于铜单滑载装载案例的40倍的自由度,从而降低计算时间和复杂性。

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