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Molecular Dynamics Simulation of Mechanical Behaviors of a System Including Both a Crack and Grain Boundaries under Cyclic Loading

机译:循环载荷下同时包含裂纹和晶界的系统力学行为的分子动力学模拟

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摘要

The mechanical behaviors around a crack tip for a system including both a crack and two tilt grain boundaries under cyclic loading are examined using a molecular dynamics simulation. The grain boundary, whose direction of the axis of misorientation angle is <110> and whose plane is {112}, is considered in this simulation. This grain boundary has the lowest grain boundary energy among all tilt grain boundaries. The Johnson potential for alpha-Fe is used in the analysis to describe interaction between atoms. Not only a structural transition from bcc to hcp but also ductile deformation occurs around the crack tip during the first loading in order to relax stress concentration. Edge dislocations emitted from the crack tip are observed and they move to the <111> direction on the {112} plane, which is a slip system of alpha-Fe. Then, two dislocation pile-ups near the grain boundaries are formed after the edge dislocations reach the grain boundaries, because they cannot move beyond the grain boundaries. Alternating slipping-off occurs at the crack tip because of the emission of the edge dislocations. During the first unloading, the edge dislocations emitted from the crack tip return to the crack tip and disappear in the system. Then, twin deformation occurs from the crack tip and expands along the slip direction until it reaches the grain boundary. We observe that not only the crack does not propagate in the cleavage plane of alpha-Fe but also several vacancies are generated along the slip direction from the crack tip during cyclic loading. Conclusively, we suggest the fatigue crack growth mechanism for the initial phase of the fatigue fracture. That is, the fatigue crack propagates along the slip direction due to coalescence between the crack and vacancies which are caused by the emission and absorption of the dislocations and the twin deformation around the crack tip.
机译:使用分子动力学模拟检查了循环载荷下同时包含裂纹和两个倾斜晶界的系统的裂纹尖端周围的力学行为。在该模拟中考虑了晶界,该晶界的取向差角的轴的方向为<110>,其平面为{112}。在所有倾斜的晶界中,该晶界具有最低的晶界能量。分析中使用Johnson-Fe势来描述原子之间的相互作用。在第一次加载期间,不仅从bcc到hcp的结构过渡,而且在裂纹尖端周围发生延性变形,以缓解应力集中。观察到了从裂纹尖端发出的边缘位错,它们在{112}平面(α-Fe的滑移系统)上向<111>方向移动。然后,在边缘位错到达晶界之后,在晶界附近形成了两个位错堆积,因为它们不能移动到晶界之外。由于边缘位错的散发,在裂纹尖端发生交替的滑脱。在第一次卸载期间,从裂纹尖端发出的边缘位错返回到裂纹尖端,并在系统中消失。然后,孪晶变形从裂纹尖端开始发生并沿滑动方向扩展,直到到达晶界为止。我们观察到,不仅裂纹不会在α-Fe的劈裂面上传播,而且在循环加载过程中沿裂纹方向从裂纹尖端产生了一些空位。最后,我们提出了疲劳断裂初期的疲劳裂纹扩展机制。即,由于裂纹的位错的吸收和吸收以及裂纹尖端附近的孪生形变引起的裂纹和空位之间的结合,疲劳裂纹沿着滑动方向传播。

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