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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Influence of cryogenic deformation on second-phase particles, grain structure, and mechanical properties of Al-Cu-Mn alloy
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Influence of cryogenic deformation on second-phase particles, grain structure, and mechanical properties of Al-Cu-Mn alloy

机译:低温变形对Al-Cu-Mn合金二相颗粒,晶粒结构和机械性能的影响

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摘要

To refine the coarse second-phase particles (Al2Cu) and grains of Al-Cu-Mn alloy, 10% and 20% compression deformation at cryogenic and room temperatures was applied, followed by a T8 heat treatment process consisting of solution treatment, 3% cold deformation, and artificial aging. The microstructures of the compressed and heat-treated samples were investigated using a combination of scanning electron microscopy, X-ray diffractometry, electron backscattering diffractometry, and transmission electron microscopy, with the results showing that coarse Al2Cu particles are fragmented during cryogenic compression. Further, the higher dislocation densities in the cryogenically deformed samples, which lower the activation energies for atomic diffusion, promote the dissolution of particles during subsequent heat treatment. After heat treatment, the volume fraction of coarse particles decreased from 2.5% for a sample processed without deformation, to 0.5% for the sample cryogenically compressed at a ratio of 20%. Meanwhile, the higher dislocation density provides more nucleation sites for recrystallization during heat treatment. Consequently, at 33 mm, the average size of the grains in the 20% cryogenically compressed sample was much smaller than the size of the grains in the uncompressed sample (500 mm). This microstructural refinement increased the ultimate tensile strength, yield strength, and elongation from 445 MPa, 363 MPa, and 7.1% in the undeformed sample, to 471 MPa, 377 MPa, and 13.4%, respectively, in the cryogenically compressed sample. (C) 2020 Elsevier B.V. All rights reserved.
机译:为了优化粗糙的第二相颗粒(Al2Cu)和Al-Cu-Mn合金的晶粒,施加10%和20%的冷冻室温压缩变形,然后由溶液处理组成的T8热处理过程,3%冷变形和人工老化。研究了压缩和热处理样品的微观结构使用扫描电子显微镜,X射线衍射法,电子反向散射衍射法和透射电子显微镜的组合,结果表明在低温压缩期间粗糙Al 2Cu颗粒碎裂。此外,低温变形样品中的较高位错密度,其降低原子扩散的活化能量,促进后续热处理期间颗粒的溶解。热处理后,粗颗粒的体积分数从2.5%降低,对于在不变形的情况下加工的样品减少至0.5%,以便以20%的比例低温压缩。同时,较高的位错密度提供了更多的成核位点以在热处理期间再结晶。因此,在33mm处,20%低温压缩样品中的颗粒的平均尺寸远小于未压缩样品(500mm)中的颗粒的尺寸。该微观结构细化在低温压缩样品中增加了445MPa,363MPa,4.5MPa,377MPa和13.4%的445MPa,363MPa和7.1%的伸长率,屈服强度和伸长率。 (c)2020 Elsevier B.v.保留所有权利。

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