Meixue Song, Ruifeng Dong, Tianyuan Xu
This study systematically investigates the influence mechanisms of heat treatment processes on the electrochemical corrosion resistance of hot-rolled 5083 aluminum alloy sheets, aiming to provide theoretical support for enhancing the service life of marine aluminum alloys. By integrating first-principles calculations with experimental data, the evolution patterns of second-phase composition and size under different annealing temperatures and holding times were revealed, elucidating their impact mechanisms on corrosion behavior. Conclusions: The typical second phases in 5083 aluminum alloy are Mg 2 Si, Al 6 Mn, Al 3 Ce, Al 3 Fe, and Al 6 (Mn, Fe). Between 150–400 °C, second phase particle size slightly decreased, while it significantly increased at 400–500 °C. Electrochemical test results indicate that the corrosion resistance of 5083 aluminum alloy is poorest at an annealing temperature of 350 °C. The variation in corrosion resistance primarily depends on the evolution of the β phase (Al 3 Mg 2 ) and the dissolution and coarsening of the Al 6 Mn, Al 3 Fe, and Al 6 (Mn, Fe) phases. • Detailed statistics on the number of second-phase dimensions. • Analysis of the Mechanism of Resistance to Electrochemical Corrosion from the Perspective of Second-Phase Particles. • First-principles simulations validate experimental findings.