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Corrosion Behavior of Galvanized Steel in a Simulated Marine Atmospheric Environment |
WANG Jin1, NING Peidong1, LIU Qianqian2, CHEN Nana2, ZHANG Xin3, XIAO Kui2( ) |
1.Research Institute, JISCO Hongxing Iron and Steel Co. Ltd., Jiayuguan 735100, China 2.Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China 3.Testing Center of University of Science and Technology Beijing Co. Ltd., Beijing 100083, China |
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Abstract The corrosion behavior of hot-dip galvanized steel after various test cycles in simulate marine atmospheric environment was assessed by mass loss method, 3D confocal microscope, electrochemical impedance spectroscope (EIS), scanning electron microscope (SEM), energy dispersive spectrometer (EDS), X-ray diffractometer (XRD) and X-ray photoelectron spectroscope (XPS). The results show that the corrosion rate of the steel samples was higher at the beginning of the experiment, then decreased at 56 d, and increased again at 104 d, which might be related to the formation of corrosion products. After being tested for 56 d, the steel suffered form mainly uniform corrosion, the main corrosion products were hydroxyzinc chloride (Zn5(OH)8Cl2·H2O), zinc oxide (ZnO) and basic zinc carbonate (Zn5(OH)6(CO3)2). In the simulated marine atmospheric environment, the corrosion resistance of the hot-dip galvanized coating failed quickly. Whilst, the corrosion rate has been accelerating until the formation of a relatively complete corrosion product film on the existed damaged areas, hence, the corrosion product film has a certain inhibitory effect on the corrosion of the coating.
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Received: 14 May 2022
32134.14.1005.4537.2022.151
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Fund: National Materials Corrosion and Protection Date Center |
Corresponding Authors:
XIAO Kui, E-mail: xiaokui@ustb.edu.cn
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