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April 3, 2026Materials0 citationsOpen Access

Effect of Differential Speed Ratio on the Microstructural Evolution and Mechanical Properties of Asynchronously Rolled 7075 Aluminum Alloy

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LWLanshun WeiXLXiaowei LianLDLiping Deng

Key Points

  • This research aims to explore how differential speed rolling affects the microstructural changes and mechanical properties of 7075 aluminum alloy.
  • Used differential speed rolling with 60% reduction
  • Conducted isothermal aging at 120 °C for 24 hours
  • Analyzed changes in microstructure and mechanical properties
  • DSR promotes grain refinement and defect accumulation
  • DSR2.0 shows the best microstructure with high kernel average misorientation
  • DSR2.0 achieves optimal strength-ductility balance with 582.26 MPa yield strength and 10.75% elongation

Abstract

The increasing demands of application conditions urgently call for process innovations in high-performance 7xxx aluminum alloys. This study investigated the effect of differential speed rolling (DSR) on the microstructural evolution and mechanical properties of 7075 aluminum alloy subjected to DSR with a total reduction of 60%, followed by isothermal aging at 120 °C for 24 h. The results show that DSR promotes the development of grain refinement, defect accumulation, and deformation texture, while the corresponding strengthening effect exhibits a non-monotonic dependence on speed ratio. Among all conditions, the DSR2.0 sample exhibits the most favorable microstructure, characterized by the highest kernel average misorientation (KAM) value, the strongest deformation texture, and the finest as well as most densely distributed intragranular η′ precipitates. Accordingly, the DSR2.0 sample achieves the optimal strength–ductility balance, with a yield strength, ultimate tensile strength, elongation, and hardness of 582.26 MPa, 648.43 MPa, 10.75%, and 199.8 HV, respectively. Specifically, the deterioration in the properties of the DSR2.5 sample is attributed to localized recovery, shear inhomogeneity and coarsening of precipitates. The differential speed ratio enables effective optimization of the 7075 aluminum alloy by regulating the evolution of grains, dislocations, precipitate phases, and texture, among which precipitation strengthening is the dominant calculated contribution. Therefore, an appropriate differential speed ratio is key to achieving performance optimization.

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Cite This Study

Wei et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e505a333a821460c8d3https://doi.org/10.3390/ma19071412
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