Effect of temperature on near-surface microstructural evolution in nanocrystalline metal under shear stress剪切应力下温度对纳米晶Al-Mg-Si 合金近表面微观结构演变的影响

被引:0
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作者
Gang Lei
Jian-rui Xing
Hai-tao Gao
Xiao-hui Cui
Hai-liang Yu
机构
[1] Central South University,College of Mechanical and Electrical Engineering
[2] Central South University,State Key Laboratory of Precision Manufacturing for Extreme Service Performance
[3] Central South University,Light Alloy Research Institute
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关键词
nanocrystalline aluminum alloys; microstructural evolution; dry sliding; temperature effect; molecular dynamics; 纳米晶铝合金; 微观结构演变; 干滑动; 温度效应; 分子动力学;
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摘要
Molecular dynamics simulations were used to investigate the temperature effect in the microstructural evolution of nanocrystalline Al-Mg-Si alloy under different pressures and velocities. A deformation mechanism map is proposed through quantitative characterization of the microstructural evolution. This map provides a “phase diagram” illustrating the elastic-plastic transition, stacking faults (SFs), grain refinement, and shear layer formation under different temperatures and loads. Changes in temperature alter SFs motion and microstructural integrity. SFs appear in the form of single trace line (300 K) and multiple parallel lines (77 K), respectively. Compared to 300 K, the rotation and slip motion of grains in the sample are restricted at 77 K, making it difficult for the microstructure to rearrange. Under external loading, the degree of grain refinement is greater at 77 K (up to 13.2% refinement) compared to the refinement at 300 K (maximum ∼8.3%). This leads to the generation of a greater number of grain boundaries (GBs) and SFs. Additionally, there is a significant variation in the special GBs (represented by 23) with a relatively high overall content. A sudden drop in integrity occurs at a pressure of 105 atm. And the deformation at the highest velocity recovers to almost the same low level as at the lowest velocity.
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页码:3173 / 3186
页数:13
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