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| Influence of Sacrificial Anode Materials on Corrosion Behavior of B30 Cu-Ni Alloy Heat Transfer Tubes in a Simulated System of Circulating Seawater |
XU Huiqiang1, LAI Changqing2, WANG Xixi2, WANG Ziming2( ) |
1.No. 703 Research Institute of CSSC, Harbin 150000, China 2.School of Materials Science and Engineering, Xiamen University, Xiamen 361005, China |
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Cite this article:
XU Huiqiang, LAI Changqing, WANG Xixi, WANG Ziming. Influence of Sacrificial Anode Materials on Corrosion Behavior of B30 Cu-Ni Alloy Heat Transfer Tubes in a Simulated System of Circulating Seawater. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1139-1147.
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Abstract The B30 heat transfer tubes on the seaward side of the vessel are critical components of the steam-powered support system and are exposed to the risk of seawater corrosion during service. In this study, a laboratory-scale simulated system of circulating seawater for heat transfer tubes was established. By installing zinc and iron sacrificial anodes separately, the effect of these anodes on the corrosion behavior of the heat transfer tubes were investigated. The findings revealed that, compared with the condition without sacrificial anodes, both zinc and iron sacrificial anodes can all slow down the corrosion of the heat transfer tubes, resulting in lower concentrations of dissolved Cu2+ ions in the water. Meanwhile, it was discovered that the effectiveness of sacrificial anode protection correlates with spatial distance, whilst the potential fluctuating along the pipeline may result in varying degrees of protection at different distances on the pipeline. The conclusions of this study provide experimental evidence and recommendations for the rational design of ship condenser heat exchanger piping, particularly regarding the selection and installation of sacrificial anodes.
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Received: 29 August 2025
32134.14.1005.4537.2025.274
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| Fund: National Natural Science Foundation of China(52271075) |
Corresponding Authors:
WANG Ziming, E-mail: zmwang@xmu.edu.cn
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