海洋微生物在船舶用结构钢表面附着成膜过程及其腐蚀研究

董耀华, 贺中意, 郭娜, 刘涛, 董丽华

海洋学研究 ›› 2015, Vol. 33 ›› Issue (1) : 39-44.

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海洋学研究 ›› 2015, Vol. 33 ›› Issue (1) : 39-44. DOI: 10.3969/j.issn.1001-909X.2015.01.006
研究论文

海洋微生物在船舶用结构钢表面附着成膜过程及其腐蚀研究

  • 董耀华, 贺中意, 郭娜, 刘涛, 董丽华*
作者信息 +

The formation process of biofilm of marine microorganism and the influence on the corrosion of the ship structural steel

  • DONG Yao-hua, HE Zhong-yi, GUO Na, LIU Tao, DONG Li-hua*
Author information +
文章历史 +

摘要

通过紫外分光光度计测定了海洋微生物需钠弧菌 Vibrio natriegens 的生长曲线,通过扫描电镜和原子力显微镜观测了该细菌在船舶用结构钢(DH32)钢样表面成膜过程及试样腐蚀形貌,探讨了生物膜的形成过程及其对材料表面腐蚀的影响。结果表明,生物膜的形成过程与微生物生命活动关系密切。根据对比暴露在菌液和无菌培养基中的试样表面形貌,发现细菌的附着及成膜过程的不均匀性,改变了DH32钢样表面的物理和化学状态。细菌附着区与周围形成的氧浓差电池,以及细菌新陈代谢主要产物对金属离子的络合,共同促进了试样局部腐蚀加速。

Abstract

In order to study the influence of the formation of biofilm on the corrosion of DH32 structural steel, the growth curve of a marine microorganism (Vibrio natriegens) was tested by UV-Vis spectra, the formation process of biofilm and the surface of the coupons were characterized by scanning electron microscope and atomic force microscope, respectively. The results show that the formation of biofilm closely associates with the growth of bacteria, the formation process of biofilm changes the chemical and physical state of the steel surface. Moreover, the formation of oxygen concentration cell and binding power of extracellular polymeric substances with metal ions greatly promotes the DH32 surface oxidation corrosion.

关键词

海洋微生物 / 生物膜 / 腐蚀

Key words

marine microorganism / biofilm / corrosion

引用本文

导出引用
董耀华, 贺中意, 郭娜, 刘涛, 董丽华. 海洋微生物在船舶用结构钢表面附着成膜过程及其腐蚀研究[J]. 海洋学研究. 2015, 33(1): 39-44 https://doi.org/10.3969/j.issn.1001-909X.2015.01.006
DONG Yao-hua, HE Zhong-yi, GUO Na, LIU Tao, DONG Li-hua. The formation process of biofilm of marine microorganism and the influence on the corrosion of the ship structural steel[J]. Journal of Marine Sciences. 2015, 33(1): 39-44 https://doi.org/10.3969/j.issn.1001-909X.2015.01.006
中图分类号: X17   

参考文献

[1] WANG Qing-fei,SONG Shi-zhe. Progress in marine biological influenced corrosion study[J]. Journal of Chinese Society for Corrosion and Protection,2002,22(3):184-188.
王庆飞,宋诗哲.金属材料海洋环境生物污损腐蚀研究进展[J].中国腐蚀与防护学报.2002,22(3):184-188.
[2] NATARAJAN K A.Biofouling and microbially influenced corrosion of stainless steels[J]. Century of Stainless Steels,2013,28(125):2 536-2 547.
[3] DONG Ze-hua, LIU Tao, LIU Hong-fang. Influence of EPS isolated from thermophilic sulphate-reducing bacteria on carbon steel corrosion[J]. Biofouling,2011,27(5):487-495.
[4] NIU Gui-hua. Electrochemical corrosion behavior of 316 stainless steel in marine microbial medium[J]. Chemical Research,2008,19(3):83-90.
牛桂华.海洋微生物对316不锈钢的电化学腐蚀行为[J].化学研究,2008,19(3):83-90.
[5] FUSHIMI K,YANAGISAWA K,NAKANISHI T,et al. Microelectrochemistry of dual-phase steel corroding in 0.1 M sulfuric acid[J]. Electrochim Acta,2013,114:83-87.
[6] MELCHERS R E. Microbiological and abiotic processes in modelling longer-term marine corrosion of steel[J]. Bioelectrochemistry,2014,97(S1):89-96.
[7] REMAZEILLES C, SAHEB M,NEFF D,et al. Microbiologically influenced corrosion of archaeological artefacts: characterisation of iron(II) sulfides by Raman spectroscopy[J]. J Raman Spectrosc,2010,41(25):1 425-1 433.
[8] JAVAHERDASHTI R, RAMAN R K S,PANTER C. Microbiologically assisted stress corrosion cracking of carbon steel in mixed and pure cultures of sulfate reducing bacteria[J]. Int Biodeterior Biodegrad,2006,58(01):27-35.
[9] BEECH I B.Corrosion of technical materials in the presence of biofilms-current understanding and state of the art methods of study[J].International Biodeterioration & Biodegradation,2004,53(3):177-183.
[10] OSIRO D, COLNAGO L A, OTOBONI A M, et al. A kinetic model for Xylella fastidiosa adhesion, biofilm formation, and virulence[J]. FEMS Microbiology Letters,2004,236(2):313-318.
[11] ZHAO Jun, XU Gao-tian, QIN Zhe, et al. Composing of extracellular polymeric substances and its effect on sludge characteristics[J]. Safety and Environmental Engineering,2008,15(1):66-73.
赵军,徐高田,秦哲,等.胞外聚合物EPS组成及对污泥特性的影响研究[J].安全与环境工程,2008,15(1):66-73.
[12] MANSFELD F. The interaction of bacteria and metal surfaces [J]. Electrochimica Acta,2007,52(27):7 670-7 680.
[13] BEECH I B,SUNNER J. Biocorrosion: towards understanding interactions between biofilms and metals[J]. Current Opinion in Biotechnology,2004,15(3):181-186.
[14] BORENSTEIN S W. Microbiologically influenced corrosion handbook[M]. Cambridge, U.K: Woodhead Publishing,1994:310.
[15] CHANG E T,EARTHMAN J C. Axenic aerobic biofilms inhibit corrosion of SAE 1018 steel through oxygen depletion [J]. Journal of Industrial Microbiology and Biotechnology,1997,48(1):11-17.
[16] GONZDLEZ J E G,SANRANA F J H,MIRZA J C.Effect of bacterial biofilm on 316ss corrosion in natural seawater by EIS[J].Corrosion Science,1998,40(12):2 141-2 154.
[17]DONG Yao-hua, LIU Tao, SUN Shi-bin, et al. Preparation and characterization of SiO2/polydopamine/Ag nanocomposites with long-term antibacterial activity[J]. Ceramics International,2014,40(4):5 605-5 609.
[18] PIERSON J A. Real-time monitoring and control of sequencing batch reactors for secondary treatment of a poultry processing wastewater[J].Water Environment Research,2000,72(5):585-592.

基金

国家重点基础研究发展计划(973计划)资助(2014CB643306);上海自然科学基金项目资助(14ZR1419800)

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