Affiliation:
1. Light Alloy Research Institute, Central South University, Changsha 410083, China
2. State Key Laboratory of Precision Manufacturing for Extreme Service Performance, Central South University, Changsha 410083, China
3. The First Aircraft of Institute of AVIC, Xi’an 710089, China
Abstract
During the thermal deformation of aluminum alloy materials, the deformation conditions such as deformation volume, temperature and strain rate are important factors that influence the deformation mechanisms such as work hardening, dynamic recovery and dynamic recrystallization. Under the interaction of different deformation mechanisms, the properties of aluminum alloy materials will change significantly. In this study, isothermal hot compression experiments were conducted on the Al-7.92 Zn-1.64 Mg-2.00 Cu alloy to analyze its hot flow behavior (T = 250~450 °C, ɛ̇ = 0.001~1 s−1). The obtained flow behavior data were used to construct an Arrhenius-type constitutive equation and processing maps, investigating organizational evolution under diverse hot deformation conditions. The results show that the energy dissipation rate can reach 0.37 when the deformation temperature T = 380~450 °C and the strain rate ɛ̇ < 0.1 s−1, suggesting that the material is most suitable for thermal deformation processing at high temperatures and low strain rates. At a strain rate of 0.1 s−1 and a temperature of 450 °C, the percentage of recrystallized grains and substructures increased by 7.20% and 3.14%, respectively, compared to 300 °C, which is due to the severe dynamic recovery and dynamic recrystallization. At 350 °C and 0.1 s−1, there was a higher percentage of recrystallized grains and substructures, 5.44% and 5.87% higher, respectively, than at a strain rate of 1 s−1, indicating that the release of dislocation accumulation due to deformation storage energy will be more favored at low strain rates, which promotes the enhancement of the dynamic recrystallization mechanism.
Funder
Major Projects of Scientific and Technology Innovation of Hunan Province
Reference29 articles.
1. Wang, H., Jia, L., Wang, W., Ye, C., Li, C., Zhang, X., and Zhang, H. (2022). Effect of the Initial Texture, Recrystallization and Re-Dissolution Process on the Evolution of Texture during Solution Treatment of the 7A65 Hot Rolled Plate. Metals, 12.
2. Improved mechanical anisotropy and texture optimization of a 3xx aluminum alloy by differential temperature rolling;Fan;Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process.,2021
3. Czerwinski, F. (2020). Thermal Stability of Aluminum Alloys. Materials, 13.
4. Flow Behavior and Microstructure of 7A85 Aluminum Alloy During Hot Compression;Qiu;J. Mater. Eng.,2016
5. Early-stage precipitation in Al–Zn–Mg–Cu alloy (7050);Sha;Acta Mater.,2004
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