4.7 Article

Enhanced grain refinement and texture weakening in Al-Mg-Si alloy through a novel thermomechanical processing

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 925, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2022.166654

关键词

Al-Mg-Si alloy; Texture; Mechanical property; Microstructure; Thermomechanical processing

资金

  1. China Postdoctoral Science Foundation [2020M671667]
  2. Opening Project of the State Key Lab of Advanced Metals and Materials [2019-Z02]
  3. National Natural Science Foundation of China [11972202, 52075272]
  4. Project of Key Laboratory of Impact and Safety Engineering, Ministry of Education, Ningbo University [cj201912]
  5. Major Project of Ningbo Science and Technology Innovation 2025 [2020Z042, 2019B10100]
  6. K. C.Wong Magna Fund from Ningbo University

向作者/读者索取更多资源

A novel thermomechanical processing method was proposed to obtain an Al-Mg-Si alloy sheet with fine grain structure, weak texture, and high plastic strain ratio. By controlling the overaging time, the grain structure can be refined, the texture can be weakened, and the plastic strain ratio can be improved.
A novel thermomechanical processing including solution treatment, first rolling with large deformation and overaging based on particle-stimulated nucleation of recrystallization (PSN) was proposed to obtain an Al-Mg-Si alloy sheet with fine grain structure, weak texture and high plastic strain ratio. The difference between conventional thermomechanical processing and novel thermomechanical processing with two overaging time parameters was investigated by texture and microstructure characterization and tensile tests. The results show that the finest grain structure with an average size of 17 mu m, the weakest re-crystallization texture with a volume fraction of 8.4 %, the highest average plastic strain ratio r of 0.69 and the lowest planar anisotropy delta r of - 0.001 were acquired by the novel thermomechanical processing with a long overaging time. In comparison with conventional thermomechanical processing, the novel thermo-mechanical processing can generate completely different particle distributions and tends to develop a weak texture consisting of the CubeND {001} < 310 > orientation. Increasing the overaging time is effective in coarsening the particles and thus refining the grain structure, weakening the texture, and improving the average r and delta r values. The genetic characteristics of texture evolution and the particle distribution determine the final recrystallization texture. (C) 2022 Elsevier B.V. All rights reserved.

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