Effect of coexisting anions on corrosion of reinforced steel treated by DNA corrosion inhibitor in simulated concrete pore solution
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TU528.571

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    Abstract:

    A deoxyribonucleic acid(DNA)corrosion inhibitor was prepared by dissolving a mixture of primers with a length of 20~80 bases in a nucleic acid buffer. Linear polarization and electrochemical impedance spectroscopy(EIS)were employed to investigate the effect of coexisting anions, HCO-3 and SO2-4, on the chloride-induced corrosion of reinforced steel in simulated concrete pore solution for the corrosion inhibition of DNA. After different treatments, X-ray photoelectron spectroscopy(XPS)was used to characterize the structure of the surface membrane of the reinforced steel. The results show that the DNA corrosion inhibitor has a good anticorrosive effect on the steel reinforcement. However, the presence of coexisting anion HCO-3 accelerates the corrosion rate of the reinforced steel. The addition of the DNA corrosion inhibitor alleviates the steel corrosion process and its rust inhibition efficiency is comparable to that of the commonly used commercial corrosion inhibitor(the main component is sodium phosphate). The presence of SO2-4 increases the corrosion rate of the reinforced steel, and its corrosion inhibiting efficiency is even higher than that of the commercial one under the same conditions.

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蒋林华,陈晨,郭明志,等.共存阴离子对核酸阻锈剂在模拟混凝土孔溶液中钢筋阻锈作用的影响[J].水利水电科技进展,2020,40(1):88-94.(JIANG Linhua, CHEN Chen, GUO Mingzhi, et al. Effect of coexisting anions on corrosion of reinforced steel treated by DNA corrosion inhibitor in simulated concrete pore solution[J]. Advances in Science and Technology of Water Resources,2020,40(1):88-94.(in Chinese))

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  • Online: January 22,2020
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