Effect of Temperature on the Localized Corrosion of AA2024-T3 and the Electrochemistry of Intermetallic Compounds During Exposure to a Dilute NaCl Solution

被引:19
|
作者
Li, Jichao [1 ]
Hurley, Belinda [1 ]
Buchheit, Rudolph [1 ]
机构
[1] Ohio State Univ, Dept Mat Sci & Engn, Fontana Corros Ctr, 116 W 19Th Ave, Columbus, OH 43210 USA
关键词
Al alloy; dealloying; intermetallic compounds; localized corrosion; pitting corrosion; temperature; ALUMINUM-ALLOY; 2024-T3; LASER-SCANNING MICROSCOPY; PITTING CORROSION; PHASES COMMON; PARTICLES; AL2CUMG; DISSOLUTION; INHIBITION; INITIATION; METROLOGY;
D O I
10.5006/2136
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this study, the electrochemical properties of synthesized intermetallic compounds (IMCs) similar to those commonly found in AA2024-T3 were studied in neutral 0.1 M NaCl at 10, 30, 50, and 70 degrees C using the electrochemical microcell method. Results on the synthesized IMCs were combined with and supported by analysis of free corrosion experiments performed on AA2024-T3. Results reveal that, in general, corrosion rates of the IMCs increase with temperature and pitting potentials of most IMCs show a slight decrease with temperature. Increased dealloying kinetics of S-phase with increasing temperature was evident in both open-circuit potential transients and post-exposure corrosion morphology characteristics, leading to increased Cu surface areas and a higher likelihood of the propagation of localized corrosion into the matrix. The corrosion potential of synthesized Al-Cu-Mn-Fe type particles was found to be cathodic to the matrix at low temperatures, but anodic to the matrix at high temperatures. This high-temperature behavior led to dissolution of Al-Cu-Mn-Fe type particles, not commonly found under ambient conditions. After dealloying, these particles became cathodic to the matrix, leading to trenching similar to that found under low-temperature conditions. The limiting current density on most synthesized IMCs, as a result of the oxygen reduction reaction, was maximized at around 50 degrees C, consistent with calculations using a simplified Cottrell equation and based on the temperature dependence of oxygen solubility and oxygen diffusion.
引用
收藏
页码:1281 / 1291
页数:11
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