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脉冲电流对AZ80镁合金拉伸变形行为及微观组织演变的影响

Effect of Pulsed Current on the Tensile Deformation Behavior and Microstructure Evolution of AZ80 Magnesium Alloy.

作者信息

Xu Hong, Zhou You, Zou Yu-Jie, Liu Meng, Guo Zhi-Peng, Ren Si-Yu, Yan Rong-Hui, Cheng Xiu-Ming

机构信息

Key Laboratory of Automotive Materials of Ministry of Education & School of Materials Science and Engineering, Nanling Campus, Jilin University, No. 5988 Renmin Street, Changchun 130025, China.

出版信息

Materials (Basel). 2020 Oct 29;13(21):4840. doi: 10.3390/ma13214840.

Abstract

In this work, the tensile deformation behavior of an as-extruded AZ80 magnesium alloy under pulsed current (PC) was investigated based on microstructure observations. We found that compared with the tensile tests at room temperature (RT) and given temperature (GT), the flow stress is reduced due to both thermal and athermal effects of pulsed current. A quasi-in-situ electron backscatter diffraction (EBSD) analysis reveals that at the same strain, the geometrically necessary dislocation (GND) density of the RT sample is the highest, followed by the GT sample and the PC sample. This proves that the athermal effect can promote the annihilation of dislocations and slow down dislocation pileup, which reduces the flow stress. In addition, the twinning behavior under different deformation conditions was studied; the twins are {10-12} tension twins, which are activated with the assistance of local stress. We found that the twin fraction in the PC sample is lower than that in the RT and GT samples, due to the least accumulation of GNDs at grain boundaries, which decreases the nucleation of {10-12} tension twins.

摘要

在这项工作中,基于微观结构观察,研究了挤压态AZ80镁合金在脉冲电流(PC)作用下的拉伸变形行为。我们发现,与室温(RT)和给定温度(GT)下的拉伸试验相比,由于脉冲电流的热效应和非热效应,流变应力降低。准原位电子背散射衍射(EBSD)分析表明,在相同应变下,RT样品的几何必要位错(GND)密度最高,其次是GT样品和PC样品。这证明非热效应可以促进位错的湮灭并减缓位错堆积,从而降低流变应力。此外,研究了不同变形条件下的孪生行为;孪晶为{10-12}拉伸孪晶,在局部应力的辅助下被激活。我们发现,PC样品中的孪晶分数低于RT和GT样品中的孪晶分数,这是因为晶界处GNDs的积累最少,从而减少了{10-12}拉伸孪晶的形核。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8752/7662784/b2b1227a7b30/materials-13-04840-g001.jpg

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