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Effect of Applied Load on Corrosion Behavior of 5383 Al-alloy Welded Joints |
ZHAI Xiwei1,2( ), LIU Shiyi2, WANG Li1, JIA Ruiling1,2, ZHANG Huixia3 |
1.School of Mechatronics Engineering, Zhongshan Polytechnic, Zhongshan 528400, China 2.School of Materials Science and Engineering, Inner Mongolia University of Technology, Hohhot 010051, China 3.National Key Laboratory of Marine Corrosion and Protection, Luoyang Ship Material Research Institute, Qingdao 266237, China |
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Cite this article:
ZHAI Xiwei, LIU Shiyi, WANG Li, JIA Ruiling, ZHANG Huixia. Effect of Applied Load on Corrosion Behavior of 5383 Al-alloy Welded Joints. Journal of Chinese Society for Corrosion and protection, 2025, 45(2): 515-522.
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Abstract Corrosion behavior of 5383 Al-alloy and its welded joints was investigated in a nature seawater by applied different loads (50%Rel, 80%Rel, 100%Rel). Its stress corrosion behavior was assessed via a four-point bending device by applied constant load and electrochemical measurement. The results showed that the bare 5383 Al-alloy exhibited obvious passivation phenomenon, while no passivation for the welded joints. When the applied load was lower than the yield strength, the charge transfer resistance (Rct) of the welded joints decreased by an order of magnitude compared to that without applied load. When the applied load was equal to the yield strength, Rct decreased by two orders of magnitude. This is because when the load is increased up to the level of yield strength, not only the microstructure and stress state of the alloy are changed, but the surface passivation film is also difficult to form. Therefore, due to losing the protective effect of the passivation film, the corrosion may gradually propagate inward to the interior, resulting in an increase in the corrosion rate of welded joints of 5383 Al-alloy.
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Received: 17 July 2024
32134.14.1005.4537.2024.213
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Fund: Special Project in Key Fields of Universities in Guangdong Province(2024ZDZX3070);High-level Talent Research Project of Zhongshan Polytechnic(KYG2201) |
Corresponding Authors:
ZHAI Xiwei, E-mail: xiweizhai@163.com
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