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Enhanced nanotwinning by special grain growth in nanocrystalline materials

机译:通过纳米晶体的特殊晶粒生长增强纳米蛋白

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摘要

Experiments have revealed that stress-driven grain growth can strongly affect the movement and distribution of the dislocations in nanocrystalline materials. Meanwhile, nanotwinning often originates from the generation and glide of partial dislocations, which is also influenced by grain growth. However, the underlying effect of the grain growth on the nucleation of nanoscale twins remains unclear. In this work, a theoretical model is established to investigate the effect of cooperative grain growth by nanograin rotation and grain boundary migration on the nucleation of nanoscale twins in deformed nanocrystalline solids. The results indicate that, in most cases, the cooperative mechanism controls the nucleation of nanoscale twins. In particular, the cooperative mechanism significantly enhances the nanotwin nucleation outside the deformed grain, while inhibits that inside the deformed grain. The capacity of nanotwin nucleation can be significantly enhanced via decreasing the level of rotation or increasing the migration distance, and it can be maximized by tailoring the coupling factor of the migration process. Moreover, the nanotwin nucleation and its length can be simultaneously optimized via tailoring the cooperative grain growth. As a result, the cooperative grain growth can serve as an effective approach to enhance nanotwinning and thereby improve the plasticity of nanocrystalline materials.
机译:实验表明,应力驱动的晶粒生长可以强烈影响纳米晶体材料中脱位的运动和分布。同时,纳米铅通常来自部分脱位的产生和滑动,这也受谷物生长的影响。然而,谷物生长对纳米级双胞胎成核的潜在影响仍不清楚。在这项工作中,建立了理论模型,以探讨纳米旋转和晶界迁移对变形纳米晶体固体的纳米级孪晶骨的叶片的基础晶体生长的影响。结果表明,在大多数情况下,合作机制控制纳米级双胞胎的成核。特别地,合作机制显着增强了变形晶粒外的纳米肽成核,同时抑制了变形晶粒内的抑制。通过降低旋转水平或增加迁移距离,可以显着提高纳米蛋白成核的能力,并且可以通过剪裁迁移过程的耦合因子来最大化。此外,可以通过根据协作晶粒生长同时优化纳米蛋白成核和其长度。结果,协同晶粒生长可以作为增强纳米铅的有效方法,从而提高纳米晶体材料的可塑性。

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  • 来源
    《Journal of Materials Science》 |2020年第8期|共11页
  • 作者单位

    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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