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多合金元素抑制海洋结构钢微生物胞外电子转移腐蚀

Inhibition of microbial extracellular electron transfer corrosion of marine structural steel with multiple alloy elements.

作者信息

Lu Shihang, He Yi, Xu Rongchang, Wang Nianxin, Chen Shiqiang, Dou Wenwen, Cheng Xin, Liu Guangzhou

机构信息

Institute of Marine Science and Technology, Shandong University, Qingdao, Shandong, 266237, China.

Ansteel Beijing Research Institute LTD, Beijing 102211, China; State Key Laboratory of Metal Material for Marine Equipment and Application, Anshan, Liaoning 114009, China.

出版信息

Bioelectrochemistry. 2023 Jun;151:108377. doi: 10.1016/j.bioelechem.2023.108377. Epub 2023 Jan 30.

Abstract

The microbial corrosion of marine structural steels (09CrCuSb low alloy steel (LAS) and Q235 carbon steel (CS)) in Desulfovibrio vulgaris medium and Pseudomonas aeruginosa medium based on seawater was investigated. In the D. vulgaris medium, the weight loss and maximum pit depth of 09CrCuSb LAS were 0.59 and 0.56 times as much as those of Q235 CS, respectively. Meanwhile, in the P. aeruginosa medium, the values were 0.53 and 0.67 times, respectively. Compared to Q235 CS, 09CrCuSb LAS contains more alloy elements (Cr, Ni, Cu, Al and Sb), which led to obvious inhibition of sessile bacteria growth but had no effect on planktonic bacteria. The number of live sessile cells on the 09CrCuSb LAS surface was 23.4 % and 26.9 % of that on the Q235 CS surface in the D. vulgaris medium and P. aeruginosa medium, respectively. Fewer sessile cells on the steel surface led to a lower extracellular electron transfer (EET) rate so that less corrosion occurred. In addition, the combined effect of alloying elements on grain refinement and passive film formation also improved the anti-corrosion property of the steels.

摘要

研究了海洋结构钢(09CrCuSb低合金钢(LAS)和Q235碳钢(CS))在基于海水的普通脱硫弧菌培养基和铜绿假单胞菌培养基中的微生物腐蚀情况。在普通脱硫弧菌培养基中,09CrCuSb LAS的失重和最大点蚀深度分别是Q235 CS的0.59倍和0.56倍。同时,在铜绿假单胞菌培养基中,这些值分别为0.53倍和0.67倍。与Q235 CS相比,09CrCuSb LAS含有更多的合金元素(Cr、Ni、Cu、Al和Sb),这导致对固着细菌的生长有明显抑制作用,但对浮游细菌没有影响。在普通脱硫弧菌培养基和铜绿假单胞菌培养基中,09CrCuSb LAS表面活的固着细胞数量分别是Q235 CS表面的23.4%和26.9%。钢表面较少的固着细胞导致较低的胞外电子转移(EET)速率,从而使腐蚀发生得较少。此外,合金元素对晶粒细化和钝化膜形成的综合作用也提高了钢的防腐性能。

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