Tian Qing, Yang Qiu-Mei, Lin Yong-Cheng, Wang Jun-Quan, Zhu Xu-Hao
Department of Electronic Science, Huizhou University, Huizhou 516007, China.
School of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.
Materials (Basel). 2021 Sep 3;14(17):5062. doi: 10.3390/ma14175062.
In this paper, the effects of an aging treatment on the corrosion resistance/mechanism of a tensile deformed Al-Cu-Mn-Fe-Zr alloy are investigated. The impedance magnitude and polarization resistance increase, while the corrosion current decreases with the increased aging time and temperature. The discontinuously-distributed precipitates and precipitation-free zone, which can cut the corrosion channels, appear at grain boundaries when the temperature is relatively high and the aging time is relatively long. They can improve the corrosion resistance. Additionally, the intergranular and pitting corrosion are the main mechanisms. The intergranular corrosion is likely to occur in an under-aged alloy. This is because the potential difference between the grain boundaries and grains is high, due to the segregation of Cu atoms. When the aging degree is increased, the grain boundary precipitates reduce the potential difference, and the intragranular precipitates make the surrounding matrix prone to dissolution. As such, the pitting corrosion is likely to occur in the over-aged alloys.
本文研究了时效处理对拉伸变形的Al-Cu-Mn-Fe-Zr合金耐蚀性/腐蚀机制的影响。随着时效时间和温度的增加,阻抗幅值和极化电阻增大,而腐蚀电流减小。当温度较高且时效时间较长时,在晶界处会出现能切断腐蚀通道的不连续分布析出相和无析出区,它们可提高耐蚀性。此外,晶间腐蚀和点蚀是主要的腐蚀机制。晶间腐蚀可能发生在欠时效合金中。这是因为由于Cu原子的偏聚,晶界和晶粒之间的电位差较高。当时效程度增加时,晶界析出相降低了电位差,而晶内析出相使周围基体易于溶解。因此,过时效合金中可能发生点蚀。