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Zener pinning by coherent particles: pinning efficiency and particle reorientation mechanisms

机译:齐纳通过相干粒子固定:钉扎效率和粒子重新定向机制

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Zener pinning by coherent particles in copper-nickel model alloys has been studied using molecular dynamics simulations. It is found that 4 nm Ni particles were easily cut by migrating Cu grain boundaries during boundary passage, while 7-8 nm particles were harder to cut and coherency-to-incoherency change occurred for some boundaries. Due to low volume fraction and easy cutting, 4 nm particles had a limited pinning effect on grain boundary motion. The increase in volume fraction and the suppressed cutting for 7-8 nm particles caused the boundary motion to be significantly retarded. Different grain boundaries exhibited the distinct ability to move past the same size particle. Significantly, with the pinning effect of Ni particles, misorientation dependence of boundary migration velocity became obvious, which is consistent with the findings in practical materials. During or after passage, the Ni particles were found to change orientation to become coherent with grain growth via various atomistic mechanisms. The mechanisms were discussed with respect to particle size and boundary misorientation.
机译:通过分子动力学模拟研究了铜镍模型合金中的相干颗粒的齐纳固定。结果发现,通过在边界通道期间迁移Cu晶界,易于切割4nM Ni颗粒,而7-8nm颗粒难以切割,并且对于某些边界发生相干变化发生。由于体积差分且易切割,4nm颗粒对晶界运动具有有限的钉扎效果。体积分数的增加和7-8nm颗粒的抑制切割导致边界运动被显着延迟。不同的晶粒边界表现出了移动超过相同尺寸粒子的明显能力。显着地,随着Ni颗粒的钉扎效应,边界迁移速度的误导性依赖性变得明显,这与实际材料中的结果一致。在通过期间或之后,发现Ni颗粒改变取向以通过各种原子机制与晶粒生长相干。关于粒度和边界错位讨论了机制。

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