在体中心立方金属中的异常滑动
Daniel Caillard1, Baptiste Bienvenu2, Emmanuel Clouet3
1CEMES-CNRS, Toulouse, France. daniel.caillard@cemes.fr.
Nature
|September 28, 2022
概括
身体中心立方金属的异常滑动是由高度移动的多连接的位移引起的. 这些交叉点是动态形成的, 滑动速度要快得多, 解释了复杂的塑料流动.
科学领域:
- 材料科学
- 固体机械学
- 晶体学
背景情况:
- 晶体的可塑性和强度取决于位运动和相互作用.
- 身体中心立方体 (BCC) 金属具有复杂的可塑性,在没有最大解切应力的系统上发生滑动,特别是在低温下.
- 这种现象被称为异常滑动,与典型的晶体变形模式有所不同.
研究的目的:
- 调查导致BCC金属异常滑动的潜在机制.
- 阐明脱位相互作用和结节形成在控制塑性变形中的作用.
- 将实验观测与关于脱位行为的理论预测相协调.
主要方法:
- 在发射电子显微镜 (TEM) 中进行现场拉力测试,以观察脱位动态.
- 原子模拟以模拟脱位相互作用和结位稳定性.
- 在应力下分析脱位滑动速度和交叉点形成.
主要成果:
- BCC金属的异常滑动归因于多连接的高流动性 (连接>2个位移).
- 这些多个连接点的滑动速度明显超过单个位移的速度.
- 动态条件允许二进制连接的形成,预计在等弹性异型BCC金属中是不稳定的.
结论:
- 动态形成的多连接的高流动性是BCC金属异常滑动的主要原因.
- 实验和模拟结果证实了这些移动结的存在和意义.
- 这一发现解释了在包括在内的各种BCC金属中发生的异常滑动.
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