Microstructure evolution and mechanical responses of Al–Zn–Mg–Cu alloys during hot deformation process

被引:0
作者
Yue Guo
Jianhai Zhang
Hongwei Zhao
机构
[1] Jilin University,School of Mechanical and Aerospace Engineering
来源
Journal of Materials Science | 2021年 / 56卷
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摘要
Al–Zn–Mg–Cu alloys can be fabricated by a series of thermo-mechanical processing methods (e.g., hot rolling, forging and extrusion), which is able to serve in aeronautic, automobile, and marine industries because of its excellent physical properties. However, reaching the balance between high strength and favorable ductility to present its high performance is still in progress, during which temperature and strain rate are two very important external variables. More importantly, the core lies in sophisticated microstructure evolution paths involved in hot deformation, which consists of different microstructure mechanisms and behaviors and can be expressed as various mechanical responses. Therefore, a fundamental review of microstructure mechanisms and behaviors, microstructure evolution and relevant mechanical responses of Al–Zn–Mg–Cu alloys during high-temperature deformation is of great significance. In present paper, first, various experimental methods have been introduced. Second, general trends of mechanical properties changing with temperature and strain rate have been summarized. Third, major microstructure mechanisms and behaviors have been discussed. Then, a schematic illustration originating from dislocations’ movement has been depicted, which succeeding microstructure evolution and mechanical responses (including superplasticity) have been reviewed accordingly. Finally, further suggestions of hot deformation of Al–Zn–Mg–Cu alloys have been given.
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页码:13429 / 13478
页数:49
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共 964 条
[1]  
Azarniya A(2015)Thermal decomposition of nanostructured aluminum titanate in an active Al matrix: A novel approach to fabrication of in situ Al/Al Mater Des 88 932-941
[2]  
Hosseini HRM(2015)O J Alloys Compd 643 64-73
[3]  
Jafari M(2017)–Al Progress Mater Sci 88 186-231
[4]  
Bagheri N(2016)Ti composites Cryogenics 79 26-34
[5]  
Azarniya A(2003)A new method for fabrication of in situ Al/Al Acta Mater 51 5775-5799
[6]  
Madaah Hosseini HR(2010)Ti–Al Mater Sci Eng A 527 7305-7312
[7]  
Salvado FC(2018)O Mater Charact 144 131-140
[8]  
Teixeira-Dias F(2018) nanocomposites based on thermal decomposition of nanostructured tialite J Alloys Compd 743 283-293
[9]  
Walley SM(2020)A review on the strain rate dependency of the dynamic viscoplastic response of FCC metals J Mater Eng Perform 29 787-799
[10]  
Lea LJ(2011)Deformation behavior and microstructural evolution of 7075–T6 aluminum alloy at cryogenic temperatures Mater Des 32 1733-1759