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Defect-induced anisotropy in mechanical properties of nanocrystalline metals by molecular dynamics simulations

机译:分子动力学模拟的纳米晶体金属力学性能中的缺陷诱导各向异性

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摘要

The influence of defects in nanograins, e.g. stacking faults and twinnings, on mechanical properties of nanocrystalline materials is studied by molecular dynamics simulations. Two types of many-body interatomic potential based on aluminium are adopted to investigate the influence of stacking fault energy on the deformation mechanism of nanocrystalline metals: one accurately reproduces the energy value of stacking faults for aluminium; the other underestimates the energy value for aluminium. Three different deformation processes are performed to nanocrystalline models with high or low stacking fault energy, and crystal slips occur in both models. In the case of the high stacking fault energy, crystal deformation occurs by perfect dislocations and no defects exist in the grains. Therefore, the strength almost recovers after relaxation. On the other hand, for low stacking fault energy, stacking faults remain through the grains after the crystal slips by partial dislocations. Consequently, these defects cause anisotropy in the mechanical properties of the simulated nanocrystalline metals.
机译:纳米晶粒中缺陷的影响,例如通过分子动力学模拟研究了堆垛层错和孪晶对纳米晶材料力学性能的影响。采用两种基于铝的多体原子间原子势来研究堆垛层错能对纳米晶体金属变形机理的影响:一种能准确地再现铝堆垛层错的能值;另一种是能精确地再现铝堆垛层错的能值。另一个低估了铝的能量值。对具有高或低堆垛层错能的纳米晶体模型执行了三个不同的变形过程,并且在两个模型中都发生了晶体滑移。在高堆垛层错能的情况下,由于完全的位错而发生晶体变形,并且晶粒中不存在缺陷。因此,强度在松弛后几乎恢复。另一方面,对于低的堆垛层错能量,在晶体由于部分位错而滑动之后,通过晶粒保留了堆垛层错。因此,这些缺陷在模拟的纳米晶体金属的机械性能中引起各向异性。

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