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Tensile deformation properties of single crystal copper with nanotwins

机译:纳米孪晶单晶铜的拉伸变形特性

摘要

The tensile properties along the 〈111 direction of single crystalline copper with 90 nanotwins are investigated by molecular dynamics simulation. The following results are observed. First, twin boundaries do not serve as a dislocation source at the very beginning of plastic deformation; instead, dislocations nucleate inside the crystal between the twin boundaries. Second, twin boundaries provide obstacles to the motion of dislocations on the inclined glide plane, and allow dislocations to move through at high stress. When the spacing of the twin boundaries is greater than 10 nm, deformation twinning starts to form during plastic deformation. Third, the flow strength of single crystal copper with nanotwins increases as the twin spacing decreases, which resembles a Hall-Petch like relationship. The strengthening mechanism is explained by a simple dislocation model.
机译:通过分子动力学模拟研究了具有90纳米孪晶的单晶铜沿〈111方向的拉伸性能。观察到以下结果。首先,在塑性变形的一开始,孪晶边界就不会成为位错源。相反,位错在孪晶边界之间的晶体内部成核。其次,孪晶边界为位错在倾斜滑行平面上的运动提供了障碍,并允许位错在高应力下通过。当孪晶边界的间隔大于10nm时,在塑性变形期间开始形成变形孪晶。第三,随着孪晶间距的减小,具有纳米孪晶的单晶铜的流动强度增加,这类似于霍尔-帕奇(Hall-Petch)关系。用简单的位错模型解释了强化机制。

著录项

  • 作者

    Chen K; Shi SQ; Lu J;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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