Corrosion-Resistant Aluminum Alloy Design Strategy Using Combination of Galvanostatic Test and Quadratic Regression Analysis
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초록

This study focuses on the design and evaluation of corrosion-resistant aluminum alloys using galvanostatic test and quadratic regression analysis. Al-Zr and Al-Mn-Zr alloys were evaluated through both galvanostatic and immersion tests. The galvanostatic test effectively simulated localized corrosion mechanisms, reducing testing duration from hundreds or thousands of hours to just tens of hours. Scanning Kelvin probe force microscopy and scanning electron microscopy/energy-dispersive spectroscopy analyses revealed that alloys with higher potential differences between precipitates and the Al matrix showed increased susceptibility to localized corrosion. A quadratic regression model was developed to describe the relationship between maximum pit depth and the contents of Zr and Mn, achieving a high coefficient of determination (R2 = 0.975). The model identified an optimal alloy composition of 0.16 wt% Zr and 0.41 wt% Mn, resulting in a minimized pit depth of 24.40 mu m. This research demonstrates that combining the galvanostatic test with regression analysis shortens the required time for development of corrosion-resistant aluminum alloys, providing a framework for optimizing compositions and predicting corrosion resistance.

키워드

localized corrosiongalvanostatic testalloy designaluminum alloyLOCALIZED CORROSIONBEHAVIORMNOPTIMIZATIONPREDICTIONKINETICSMODELPH
제목
Corrosion-Resistant Aluminum Alloy Design Strategy Using Combination of Galvanostatic Test and Quadratic Regression Analysis
저자
Kim, Geon-ilPark, Eun-HaKim, Yong-WonKim, Jung-Gu
DOI
10.1149/1945-7111/ae418b
발행일
2026-02-27
유형
Article
저널명
Journal of the Electrochemical Society
173
4