|
|
阴极极化对硫酸盐还原菌腐蚀影响的研究进展 |
管方1,2, 翟晓凡1,2, 段继周1,2( ), 侯保荣1,2( ) |
1 中国科学院海洋研究所 海洋环境腐蚀与生物污损重点实验室 青岛 266071 2 青岛海洋科学与技术国家实验室 海洋腐蚀与防护开放工作室 青岛 266237 |
|
Progress on Influence of Cathodic Polarization on Sulfate-reducing Bacteria Induced Corrosion |
Fang GUAN1,2, Xiaofan ZHAI1,2, Jizhou DUAN1,2( ), Baorong HOU1,2( ) |
1 Key laboratory of Marine Environmental Corrosion and Biofouling, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China 2 Open Studio for Marine Corrosion and Protection, Qingdao National Laboratory for Marine Science and Technology, Qingdao 266237, China |
引用本文:
管方, 翟晓凡, 段继周, 侯保荣. 阴极极化对硫酸盐还原菌腐蚀影响的研究进展[J]. 中国腐蚀与防护学报, 2018, 38(1): 1-10.
Fang GUAN,
Xiaofan ZHAI,
Jizhou DUAN,
Baorong HOU.
Progress on Influence of Cathodic Polarization on Sulfate-reducing Bacteria Induced Corrosion. Journal of Chinese Society for Corrosion and protection, 2018, 38(1): 1-10.
链接本文:
https://www.jcscp.org/CN/10.11902/1005.4537.2016.216
或
https://www.jcscp.org/CN/Y2018/V38/I1/1
|
[1] | Buchanan R A, Kovacs A L, Lundin C D, et al.Microbially influenced corrosion of Fe-, Ni-, Cu-, Al-, and Ti-based weldments[J]. Mater. Perform., 1997, 36(6): 46 | [2] | Koch G H,Brongers M P H,Thompson N G,et al.Corrosion cost and preventive strategies in the United States[J]. J. Endocrinol., 2002, 122(1): 23 | [3] | Zhang F, Liu H W, Chen B, et al.Corrosion inhibition of imidazoline for carbon steel in CO2-saturated artificial sewages with sulfate reduction bacteria[J]. J. Chin. Soc. Corros. Prot., 2015, 35: 156(张帆, 刘宏伟, 陈碧等. CO2和SRB共存产出水中咪唑啉衍生物的环境行为及缓蚀长效性研究[J]. 中国腐蚀与防护学报, 2015, 35: 156) | [4] | Liu H W, Zhang F, Wu Y N, et al.Inhibition behavior of dodecylamine inhibitor in oilfield produced water containing saturated CO2 and SRB[J]. Corros. Prot., 2015, 36: 137(刘宏伟, 张帆, 吴亚楠等. 油田产出水中饱和CO2和SRB共存条件下十二胺缓蚀剂的缓蚀行为[J]. 腐蚀与防护, 2015, 36: 137) | [5] | Liu H W, Liu H F, Qin S, et al.Investigation of biomineralization induced by sulfate reducing bacteria in sewage gathering pipelines in oilfield[J]. Corros. Sci. Prot. Technol., 2015, 27: 7(刘宏伟, 刘宏芳, 秦双等. 集输管线硫酸盐还原菌诱导生物矿化作用调查[J]. 腐蚀科学与防护技术, 2015, 27: 7) | [6] | Liu H W, Xu D K, Dao A Q, et al.Study of corrosion behavior and mechanism of carbon steel in the presence of Chlorella vulgaris[J]. Corros. Sci., 2015, 101: 84 | [7] | Liu H F, Gu T Y, Asif M, et al.The corrosion behavior and mechanism of carbon steel induced by extracellular polymeric substances of iron-oxidizing bacteria[J]. Corros. Sci., 2017, 114: 102 | [8] | Liu H W, Gu T Y, Zhang G A, et al.Corrosion inhibition of carbon steel in CO2-containing oilfield produced water in the presence of iron-oxidizing bacteria and inhibitors[J]. Corros. Sci., 2016, 105: 149 | [9] | Liu H W, Gu T Y, Zhang G A, et al.The effect of magneticfield on biomineralization and corrosion behavior of carbon steel induced by iron-oxidizing bacteria[J]. Corros. Sci., 2016, 102: 93 | [10] | Liu H W, Xu D K, Wu Y N, et al.Research progress in corrosion of steels induced by sulfate reducing bacteria[J]. Corros. Sci. Prot. Technol., 2015, 27: 409(刘宏伟, 徐大可, 吴亚楠等. 微生物生物膜下的钢铁材料腐蚀研究进展[J]. 腐蚀科学与防护技术, 2015, 27: 409) | [11] | Chen H W.The economic importance and activities of marine sulfate-reducing bactria[J]. J. Oceanogr. Huanghai Bohai Seas, 1998,16(4): 64(陈皓文. 海洋硫酸盐还原菌及其活动的经济重要性[J]. 黄渤海海洋, 1998, 16(4): 64) | [12] | Liu H F, Fu C Y, Gu T Y, et al.Corrosion behavior of carbon steel in the presence of sulfate reducing bacteria and iron oxidizing bacteria cultured in oilfield produced water[J]. Corros. Sci., 2015, 100: 484 | [13] | Barton L L.Sulfate-Reducing Bacteria[M]. New York: Springer Science & Business Media, 1995 | [14] | Li Q.Molecular ecological characterization of different treatments on microbial community structure in acid sulfate soil [D]. Hangzhou: Zhejiang University, 2014(李琼. 不同处理方式对酸性硫酸盐土中微生物群落结构的生态学研究 [D]. 杭州: 浙江大学, 2014) | [15] | Jiang B, Gong A J, Li X G, et al.The distribution laws of sulfate-reducing bacteria in eight soil corrosion test stations in China[J]. Chem. Bioerg., 2008, 25(4): 54(蒋波, 弓爱君, 李晓刚等. 硫酸盐还原菌在8个土壤试验站中的分布规律研究[J]. 化学与生物工程, 2008, 25(4): 54) | [16] | Wang H L, Yang J F.Spatiotemporal distribution of sulfate-reducing bacteria in Xiangshan Bay and related affecting factors[J]. Chin. J. Ecol., 2011, 30: 2857(王海丽, 杨季芳. 象山港海域硫酸盐还原菌的时空分布及其影响因素[J]. 生态学杂志, 2011, 30: 2857) | [17] | Zhang X L, Chen Z X, Liu H H, et al.Effect of environment factors on the growth of sulfate-reducing bacteria[J]. J. Chin. Soc. Corros. Prot., 2000, 20: 224(张小里, 陈志昕, 刘海洪等. 环境因素对硫酸盐还原菌生长的影响[J]. 中国腐蚀与防护学报, 2000, 20: 224) | [18] | Cai J, Zheng P, Zhang L.Sulfate-reducing bacteria and their metabolic pathway[J]. Bull. Sci. Technol., 2009, 25: 427(蔡靖, 郑平, 张蕾. 硫酸盐还原菌及其代谢途径[J]. 科技通报, 2009, 25: 427) | [19] | Zhang P Y, Xu D K, Li Y C, et al.Electron mediators accelerate the microbiologically influenced corrosion of 304 stainless steel by the Desulfovibrio vulgaris biofilm[J]. Bioelectrochemistry, 2015, 101: 14 | [20] | Horváth J, Novák M.Potential/pH equilibrium diagrams of some Me-S-H2O ternary systems and their interpretation from the point of view of metallic corrosion[J]. Corros. Sci., 1964, 4: 159 | [21] | Fischer K P.Cathodic protection in saline mud containing sulfate reducing bacteria[J]. Mater. Perform., 1981, 20(10): 41 | [22] | Kajiyama F, Okamura K.Evaluating cathodic protection reliability on steel pipe in microbially active soils[J]. Corrosion, 1999, 55: 74 | [23] | Duan J Z.Microbiologically influenced corrosion of steels in seawater and seamud containing sulfate-reducing bacteria [D]. Qingdao: Institute of Oceanology,Chinese Academy of Sciences, 2003(段继周. 海水和海泥环境中厌氧细菌对海洋用钢微生物腐蚀行为的影响 [D]. 青岛: 中国科学院研究生院 (海洋研究所), 2003) | [24] | Starosvetsky D, Starosvetsky J, Armon R, et al.A peculiar cathodic process during iron and steel corrosion in sulfate reducing bacteria (SRB) media[J]. Corros. Sci., 2010, 52: 1536 | [25] | General Administration of Quality Supervision,Inspection and Quarantine of the People's Republic of China,Standardization Administration of the People's Republic of China. GB/T 21448-2008 Specification of cathodic protection for underground steel pipelines [S]. Beijing: Standards Press of China, 2008(中华人民共和国国家质量监督检验检疫总局, 中国国家标准化管理委员会. GB/T 21448-2008 埋地钢质管道阴极保护技术规范 [S]. 北京: 中国标准出版社, 2008) | [26] | Zhang T M, Zhao W M, Guo W, et al.Susceptibility to hydrogen embrittlement of X65 steel under cathodic protection in artificial sea water[J]. J. Chin. Soc. Corros. Prot., 2014, 34: 315(张体明, 赵卫民, 郭望等. 阴极保护下X65钢在模拟海水中的氢脆敏感性研究[J]. 中国腐蚀与防护学报, 2014, 34: 315) | [27] | Chang E, Yan Y G, Li Q F, et al.Effects of cathodic polarization on the hydrogen embrittlement sensitivity of 921A steel in sea water[J]. J. Chin. Soc. Corros. Prot., 2010, 30: 83(常娥, 闫永贵, 李庆芬等. 阴极极化对921A钢海水中氢脆敏感性的影响[J]. 中国腐蚀与防护学报, 2010, 30: 83) | [28] | Yu L, Duan J Z, Zhao W, et al.Characteristics of hydrogen evolution and oxidation catalyzed by Desulfovibrio caledoniensis biofilm on pyrolytic graphite electrode[J]. Electrochim. Acta, 2011, 56: 9041 | [29] | Zhu Y Y.The effects of sulfate reducing bacteria and polarization potential on the stress corrosion cracking sensitivity of 16Mn and API X56 steel in Sea-mud [D]. Qingdao: Institute of Oceanology,Chinese Academy of Sciences, 2007(朱永艳. 硫酸盐还原菌和极化电位对海洋结构用钢在海泥中的应力腐蚀开裂敏感性的影响[D].青岛: 中国科学院研究生院(海洋研究所), 2007) | [30] | Edyvean R G J, Benson J, Thomas C J, et al. Biological influences on hydrogen effects in steel in seawater [R]. New Orleans,Louisiana: NACE International, 1997 | [31] | Grobe S, Prinz W, Sch?neich H G, et al.Influence of sulfate-reducing bacteria on cathodic protection[J]. Werk. Korros., 1996, 47: 413 | [32] | Robinson M J, Kilgallon P J.Hydrogen embrittlement of cathodically protected high-strength, low-alloy steels exposed to sulfate-reducing bacteria[J]. Corrosion, 1994, 50: 626 | [33] | Dom?alicki P, Lunarska E, Birn J.Effect of cathodic polarization and sulfate reducing bacteria on mechanical properties of different steels in synthetic sea water[J]. Mater. Corros., 2007, 58: 413 | [34] | Lunarska E, Birn J, Dom?alicki P.Hydrogen uptake by structural steels at cathodic protection in sea water inoculated with sulfate reducing bacteria[J]. Mater. Corros., 2007, 58: 13 | [35] | Wen L J, Gao Z M, Liu Y Y, et al.Effects of applied cathodic potential on susceptibility to hydrogen embrittlement and mechanical properties of Q235 steel[J]. J. Chin. Soc. Corros. Prot., 2013, 33: 271(文丽娟, 高志明, 刘洋洋等. 阴极保护电位对Q235钢氢脆敏感性和力学性能的影响[J]. 中国腐蚀与防护学报, 2013, 33: 271) | [36] | De Saravia S G G, De Mele M F L, Videla H A. Scanning electron microscopy study of SRB adherence on cathodically protected stainless steel[J]. Int. Biodeterior. Biodegrad., 1996, 37: 129 | [37] | Sun C, Xu J, Wang F H, et al.Effects of SRB on cathodic protection of Q235 steel in soils[J]. Mater. Corros., 2010, 61: 762 | [38] | Li Y.Study on the antibacterial mechanism of cathodic polarization[D]. Dalian: Dalian University of Technology, 2013(李雨. 阴极极化的抑菌机理研究 [D]. 大连: 大连理工大学, 2013) | [39] | Morris D R, Sampaleanu L P, Veysey D N.The corrosion of steel by aqueous solutions of hydrogen sulfide[J]. J. Electrochem. Soc., 1980, 127: 1228 | [40] | Shoesmith D W, Taylor P, Bailey M G, et al.The formation of ferrous monosulfide polymorphs during the corrosion of iron by aqueous hydrogen sulfide at 21 ℃[J]. J. Electrochem. Soc., 1980, 127: 1007 | [41] | Kondo K, Okamoto A, Hashimoto K, et al.Sulfur-mediated electron shuttling sustains microbial long-distance extracellular electron transfer with the aid of metallic iron sulfides[J]. Langmuir, 2015, 31: 7427 | [42] | Refait P, Jeannin M, Sabot R, et al.Electrochemical formation and transformation of corrosion products on carbon steel under cathodic protection in seawater[J]. Corros. Sci., 2013, 71: 32 | [43] | Guan F, Zhai X F, Duan J Z, et al.Influence of sulfate-reducing bacteria on the corrosion behavior of high strength steel EQ70 under cathodic polarization[J]. PLoS One, 2016, 11: e0162315 | [44] | Sun D J.Study on the inhibition mechanism of biofilm adhesion under cathodic polarization [D]. Dalian: Dalian University of Technology, 2014(孙东菊. 阴极极化对生物膜附着的抑制机制的研究 [D]. 大连: 大连理工大学, 2014) | [45] | Esquivel R G, Olivares G Z, Gayosso M J H, et al. Cathodic protection of XL 52 steel under the influence of sulfate reducing bacteria[J]. Mater. Corros., 2011, 62: 61 | [46] | Chen X, Wang G F, Gao F J, et al.Effects of sulphate-reducing bacteria on crevice corrosion in X70 pipeline steel under disbonded coatings[J]. Corros. Sci., 2015, 101: 1 | [47] | Li G H, Sun C, Qi W Y, et al.Effects of cathodic protection on corrosion of Q235 steel in SRB containing soils[J]. Corros. Sci. Prot. Technol., 2005, 17: 379(李国华, 孙成, 齐文元等. 含硫酸盐还原菌土壤中阴极保护对Q235钢腐蚀的影响[J]. 腐蚀科学与防护技术, 2005, 17: 379) | [48] | Dhar H P, Bockris J O, Lewis D H.Cathodic electrochemical process for preventing or retarding microbial and calcareous fouling[P]. U.S. Pat, 4440611, 1984 | [49] | Littauer E, Jennings D M.Prevention of marine fouling by electrical currents [A]. Proceedings of the 2nd International Congress on Marine Corrosion and Fouling[C]. Athen, 1968: 527 | [50] | De Mele M F L. Influence of cathodic protection on the initial stages of bacterial fouling [A]. Proceedings of NSF-CONICET Workshop Biocorrosion, Metal/Microbe Interaction[C]. Mar del Plata, Argentina, 1992: 181 | [51] | Zhao X D, Duan J Z, Yu L, et al.Influence of cathodic protection potential on corrosion of carbon steel in seamud containing SRB[J]. Dev. Appl. Mater., 2008, 23(3): 43(赵晓栋, 段继周, 于林等. 含有硫酸盐还原菌的海泥中阴极保护电位对碳钢腐蚀的影响[J]. 材料开发与应用, 2008, 23(3): 43) | [52] | Pons L, Délia M L, Bergel A.Effect of surface roughness, biofilm coverage and biofilm structure on the electrochemical efficiency of microbial cathodes[J]. Bioresour. Technol., 2011, 102: 2678 | [53] | Zhao W.The selection and application of electrochemically active microorganisms from marine sediments [D]. Qingdao: Institute of Oceanology, Chinese Academy of Sciences, 2011(赵伟. 海洋沉积物中产电微生物筛选及其应用基础研究 [D]. 青岛: 中国科学院研究生院(海洋研究所), 2011) | [54] | Yu L, Duan J Z, Du X Q, et al.Accelerated anaerobic corrosion of electroactive sulfate-reducing bacteria by electrochemical impedance spectroscopy and chronoamperometry[J]. Electrochem. Commun., 2013, 26: 101 | [55] | Yu L.The electro-active characteristics of sulfate-reducing bacteria and its influence on the anaerobic corrosion of carbon steels[D]. Qingdao: Institute of Oceanology,Chinese Academy of Sciences, 2011(于林. 硫酸盐还原菌生物膜电活性及腐蚀机理研究 [D]. 青岛: 中国科学院研究生院(海洋研究所), 2011) | [56] | Lovley D R.The microbe electric: Conversion of organic matter to electricity[J]. Curr. Opin. Biotechnol., 2008, 19: 564 | [57] | Vincent K A, Parkin A, Armstrong F A.Investigating and exploiting the electrocatalytic properties of hydrogenases[J]. Chem. Rev., 2007, 107: 4366 | [58] | Guezennec J, Therene M.A study of the influence of cathodic protection on the growth of SRB and corrosion in marine sediments by electrochemical techniques [A]. Sequeira C A C, Tiller A K. Microbial Corrosion 1[M]. London: Elsevier Applied Science, 1988: 256 | [59] | Hernandez G, Hart W H, Videla H A.Marine biofilms and their influence on cathodic protection: A literature survey[J]. Corros. Rev., 1994, 12: 29 | [60] | Guezennec J.Influence of cathodic protection of mild steel on the growth of sulphate-reducing bacteria at 35 ℃ in marine sediments[J]. Biofouling, 1991, 3: 339 | [61] | Villano M, De Bonis L, Rossetti S, et al.Bioelectrochemical hydrogen production with hydrogenophilic dechlorinating bacteria as electrocatalytic agents[J]. Bioresour. Technol., 2011, 102: 3193 | [62] | Geelhoed J S, Stams A J M. Electricity-assisted biological hydrogen production from acetate by Geobacter sulfurreducens[J]. Environ. Sci. Technol., 2011, 45: 815 | [63] | Parot S, Vandecandelaere I, Cournet A, et al.Catalysis of the electrochemical reduction of oxygen by bacteria isolated from electro-active biofilms formed in seawater[J]. Bioresour. Technol., 2011, 102: 304 | [64] | Kakooei S, Ismail M C, Ariwahjoedi B.Mechanisms of microbiologically influenced corrosion: A review[J]. World Appl. Sci. J., 2012, 17: 524 | [65] | Zegeye A, Huguet L, Abdelmoula M, et al.Biogenic hydroxysulfate green rust, a potential electron acceptor for SRB activity[J]. Geochim. Cosmochim. Acta, 2007, 71(22): 5450 | [66] | Beese-Vasbender P F, Nayak S, Erbe A, et al. Electrochemical characterization of direct electron uptake in electrical microbially influenced corrosion of iron by the lithoautotrophic SRB Desulfopila corrodens strain IS4[J]. Electrochim. Acta, 2015, 167: 321 | [67] | Xu D K, Gu T Y.Carbon source starvation triggered more aggressive corrosion against carbon steel by the Desulfovibrio vulgaris biofilm[J]. Int. Biodeterior. Biodegrad., 2014, 91: 74 | [68] | Sherar B W A, Power I M, Keech P G, et al. Characterizing the effect of carbon steel exposure in sulfide containing solutions to microbially induced corrosion[J]. Corros. Sci., 2011, 53: 955 | [69] | Zhou M H, Wang H Y, Hassett D J, et al.Recent advances in microbial fuel cells (MFCs) and microbial electrolysis cells (MECs) for wastewater treatment, bioenergy and bioproducts[J]. J. Chem. Technol. Biotechnol., 2013, 88: 508 | [70] | Logan B E, Regan J M.Microbial fuel cells—challenges and applications[J]. Environ. Sci. Technol., 2006, 40: 5172 | [71] | Wegener G, Krukenberg V, Riedel D, et al.Intercellular wiring enables electron transfer between methanotrophic archaea and bacteria[J]. Nature, 2015, 526: 587 | [72] | Cordas C M, Guerra L T, Xavier C, et al.Electroactive biofilms of sulphate reducing bacteria[J]. Electrochim. Acta, 2008, 54: 29 | [73] | Little B J, Wagner P A.The interrelationship between marine biofouling and cathodic protection [A]. Proceedings of NACE Corrosion 1993[C]. Houston, 1993 | [74] | Venzlaff H, Enning D, Srinivasan J, et al.Accelerated cathodic reaction in microbial corrosion of iron due to direct electron uptake by sulfate-reducing bacteria[J]. Corros. Sci., 2013, 66: 88 | [75] | Nekoksa G, Gutherman B.Cathodic protection criteria for controlling microbially influenced corrosion in power plants [R]. Palo Alto, CA: EPRI, 1991 | [76] | Dinh H T, Kuever J, Mu?mann M, et al.Iron corrosion by novel anaerobic microorganisms[J]. Nature, 2004, 427: 829 | [77] | Lens P, O'flaherty V, Moran A P, et al. Biofilms in Medicine, Industry and Environmental Biotechnology: Characteristics, Analysis and Control [M]. London, UK: IWA Publishing, 2003: 11 | [78] | Hotter P.Encyclopaedia of Environmental Microbiology[M]. New Delhi: Ivy, 2002 |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|