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Simulating size and volume fraction-dependent strength and ductility of nanotwinned composite copper

机译:模拟纳米孪晶复合铜的尺寸和体积分数相关的强度和延展性

摘要

This work presents a micromechanical model to investigate mechanical properties of nanotwinned dual-phase copper, consisting of the coarse grained phase and the nanotwinned phase. Both strengthening mechanisms of nanotwinning and the contributions of nanovoids/microcracks have been taken into account in simulations. With the aid of modified mean-field approach, the stress-strain relationship is derived by combining the constitutive relations of the coarse grained phase and the nanotwinned phase. Numerical results show that the proposed model enables us to describe the mechanical properties of the nanotwinned composite copper, including both yield strength and ductility. The calculations based on the proposed model agree well with the results from finite element method (FEM). The predicted yield strength and ductility are sensitive to the twin spacing, grain size, as well as the volume fractions of phases in this composite copper. These results will benefit the optimization of both strength and ductility by controlling constituent fractions and the size of the microstructures in metallic materials.
机译:这项工作提出了一个微观力学模型来研究纳米孪晶双相铜的机械性能,该铜相由粗晶粒相和纳米孪晶相组成。模拟中考虑了纳米孪生的强化机制和纳米空隙/微裂纹的贡献。借助于改进的平均场方法,通过结合粗粒相和纳米孪晶相的本构关系,得出应力-应变关系。数值结果表明,所提出的模型使我们能够描述纳米孪晶复合铜的力学性能,包括屈服强度和延展性。基于所提出模型的计算结果与有限元方法(FEM)的结果非常吻合。预测的屈服强度和延展性对这种复合铜的孪晶间距,晶粒尺寸以及相的体积分数敏感。这些结果将通过控制金属材料中的组成成分和微观结构的尺寸,有利于强度和延展性的优化。

著录项

  • 作者

    Zhu L; Guo X; Ruan H;

  • 作者单位
  • 年度 2016
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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