材料科学
焦耳加热
打滑(空气动力学)
晶体孪晶
合金
变形(气象学)
位错
变形机理
冶金
延展性(地球科学)
透射电子显微镜
复合材料
纳米技术
蠕动
微观结构
热力学
物理
作者
Shiteng Zhao,Ruopeng Zhang,Yan Chong,Xiaoqing Li,Anas Abu-Odeh,Eric Rothchild,D. C. Chrzan,Mark Asta,J. W. Morris,Andrew M. Minor
出处
期刊:Nature Materials
[Nature Portfolio]
日期:2020-10-05
卷期号:20 (4): 468-472
被引量:256
标识
DOI:10.1038/s41563-020-00817-z
摘要
It has been known for decades that the application of pulsed direct current can significantly enhance the formability of metals. However, the detailed mechanisms of this effect have been difficult to separate from simple Joule heating. Here, we study the electroplastic deformation of Ti–Al (7 at.% Al), an alloy that is uniquely suited for uncoupling this behaviour because, contrary to most metals, it has inherently lower ductility at higher temperature. We find that during mechanical deformation, electropulsing enhances cross-slip, producing a wavy dislocation morphology, and enhances twinning, which is similar to what occurs during cryogenic deformation. As a consequence, dislocations are prevented from localizing into planar slip bands that would lead to the early failure of the alloy under tension. Our results demonstrate that this macroscopic electroplastic behaviour originates from defect-level microstructural reconfiguration that cannot be rationalized by simple Joule heating. Transmission electron microscopy reveals the electroplastic effects in a Ti–Al alloy, which can be uncoupled from Joule heating effects. Electropulsing during deformation enhances wavy slip of dislocations, reconfiguring the dislocation pattern, and hence increases the ductility.
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