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| Effect of NaHSO3 Addition on Corrosion Behavior of 445J2 Ferritic Stainless Steel in NaCl Solution |
ZHANG Jingjing1, ZHANG Zhen2( ), ZHAO Zhanyong2, BAI Peikang2, ZHOU Jie3 |
1.State Key Laboratory of Advanced Stainless Steel, Taiyuan Iron and Steel (Group) Co. Ltd., Taiyuan 030051, China 2.School of Materials Science and Engineering, North University of China, Taiyuan 030051, China 3.CITIC Metal Ningbo Energy Co. Ltd., Ningbo 315800, China |
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Cite this article:
ZHANG Jingjing, ZHANG Zhen, ZHAO Zhanyong, BAI Peikang, ZHOU Jie. Effect of NaHSO3 Addition on Corrosion Behavior of 445J2 Ferritic Stainless Steel in NaCl Solution. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1197-1206.
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Abstract The effect of NaHSO3 addition on the corrosion behavior of 445J2 ferritic stainless steel in NaCl solution was studied by means of potentiodynamic polarization curve measurement, electrochemical impedance spectroscopy (EIS), electrochemical noise (EN), and Motta-Schottky (M-S) testing, combined with X-ray photoelectron spectroscopy (XPS) and corrosion morphology observation. The results showed that after adding 0.05 mol/L NaHSO3 to a 0.62 mol/L NaCl solution, the corrosion potential measured by polarization curve of 445J2 ferritic stainless steel decreased, the corrosion current density increased, the charge transfer resistance decreased, and the corrosion resistance sharply decreased. At the same time, many low amplitudes long-life current transient appeared in the EN time-domain signal. After adding NaHSO3, the point defects concentration of the passive film on the surface of 445J2 ferritic stainless steel increased, and the composition also changed, showing a significant Fe2+ peak and a decrease in the O2-/OH- ratio in XPS detection results. Based on the above results, the influence mechanism of NaHSO3 addition on the deterioration of passive film and corrosion resistance of 445J2 ferritic stainless steel was discussed from two aspects: the acidification of the solution and the reduction of SO by the generation of H+ and SO by HSO electrolysis.
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Received: 11 September 2025
32134.14.1005.4537.2025.289
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| Fund: Fundamental Research Program of Shanxi Province(20210302124042);CITIC Metal CBMM R&D Niobium Technology Cooperation Project(D204/M2273-2025) |
Corresponding Authors:
ZHANG Zhen, E-mail: zzhang14s@alum.imr.ac.cn
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