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A Study on the Surface Properties and Corrosion Behavior of Functional Aluminum 3003 Alloy using Anodization Method

양극산화 방법을 이용한 기능성 알루미늄 3003 합금의 표면 특성 및 부식 거동 연구

  • Kim, Jisoo (Department of Advanced Materials Engineering, Dong-eui University) ;
  • Jeong, Chanyoung (Department of Advanced Materials Engineering, Dong-eui University)
  • 김지수 (동의대학교신소재공학과) ;
  • 정찬영 (동의대학교신소재공학과)
  • Received : 2022.07.08
  • Accepted : 2022.08.10
  • Published : 2022.09.02

Abstract

Anodizing is an electrochemical surface treatment method conferring corrosion resistance and durability by forming a thick anodization film on the metal surface. Aluminum has a long service life and high thermal conductivity and formability, as well as excellent corrosion resistance. Aluminum 3003 alloy has improved formability, strength, and corrosion resistance due to the addition of a small amount of manganese. However, corrosion occurs in seawater and environments polluted with corrosion-inducing substances, which reduce corrosion resistance. Therefore, it is necessary to artificially form a thick anodized film to improve corrosion resistance. In this study, the anodization treatment time was 4 minutes, and voltages of 10 V, 20 V, 30 V, 40 V, 50 V, 60 V, 70 V, 80 V, 90 V, and 100 V were applied. The thickness and pore size of the oxide film increased according to the applied voltage. A barrier film was formed under voltage conditions from 10 V to 50 V, and a porous film was formed under voltage conditions from 60 V to 100 V. After anodizing, coating was applied. Wettability and corrosion resistance were observed before and after coating according to the surface shape and thickness of the oxide film.

Keywords

Acknowledgement

이 논문은 2022학년도 동의대학교 교내연구비에 의해 연구되었음(과제번호: 202201660001).

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