Please wait a minute...
中国腐蚀与防护学报  2026, Vol. 46 Issue (4): 1001-1014     CSTR: 32134.14.1005.4537.2025.246      DOI: 10.11902/1005.4537.2025.246
  综合评述 本期目录 | 过刊浏览 |
油气集输管线微生物腐蚀研究进展
凌威, 李宏燕(), 贺莉莉, 靳龙, 郝洪涛
宁夏大学机械工程学院 银川 750021
Research Progress on Microbial Corrosion in Oil and Gas Gathering Pipelines
LING Wei, LI Hongyan(), HE Lili, JIN Long, HAO Hongtao
College of Mechanical Engineering, Ningxia University, Yinchuan 750021, China
引用本文:

凌威, 李宏燕, 贺莉莉, 靳龙, 郝洪涛. 油气集输管线微生物腐蚀研究进展[J]. 中国腐蚀与防护学报, 2026, 46(4): 1001-1014.
Wei LING, Hongyan LI, Lili HE, Long JIN, Hongtao HAO. Research Progress on Microbial Corrosion in Oil and Gas Gathering Pipelines[J]. Journal of Chinese Society for Corrosion and protection, 2026, 46(4): 1001-1014.

全文: PDF(3121 KB)   HTML
摘要: 

微生物引发的腐蚀是造成油气管道材料破坏和失效的重要原因,管线运行环境中微生物种类众多,探究管道表层和垢下多种微生物共存时的腐蚀机理成为未来应对管道微生物腐蚀的一种重要途径。基于文献调研,综述了国内外微生物腐蚀研究进展,归纳了管道外表层及垢下腐蚀性微生物的腐蚀机理,分析了硫酸盐还原菌与其他细菌共存时的复合微生物研究进展,并探讨了微生物腐蚀的关键影响因素,结合技术发展对未来研究方向进行了展望。本文系统分析了单一微生物及混合微生物腐蚀机理的研究现状与应用,从3个方面对MIC未来的研究方向进行展望,以期为管道微生物防护技术的工程应用提供借鉴。

关键词 油气集输管线微生物腐蚀微生物腐蚀机理影响因素    
Abstract

Microbial-induced corrosion (MIC) is a critical factor leading to the damage and failure of oil and gas pipeline materials. Given the wide diversity of microorganisms in the pipeline operating environment, to understand the nature on corrosion occurred in conditions of multiple microorganisms coexisting on the pipeline surface and beneath scales will become an important approach to address pipeline microbial corrosion in the future. Based on a literature survey, this paper summarizes the research progress of MIC research at home and abroad, outlines the corrosion mechanisms of corrosive microorganisms on pipeline surfaces and beneath deposits, analyzes the progress of composite microorganisms when sulfate-reducing bacteria (SRB) coexist with other bacteria, and discusses the key factors influencing microbial corrosion. It also outlines future research directions based on technological development. This paper systematically analyzes the research status and application of corrosion mechanisms of single microorganisms and mixed microorganisms, and discusses the future research directions of MIC from three aspects, aiming to provide a reference for the engineering application of pipeline microbial protection technologies.

Key wordsoil-gas gathering pipelines    microbial corrosion (MIC)    MIC mechanisms    influencing factors
收稿日期: 2025-08-01      32134.14.1005.4537.2025.246
ZTFLH:  TE832  
基金资助:宁夏回族自治区自然科学基金(2025AAC020022)
通讯作者: 李宏燕,E-mail:lhy-208@163.com,研究方向为过程装备安全运维与控制
Corresponding author: LI Hongyan, E-mail: lhy-208@163.com
作者简介: 凌 威,男,2000年生,硕士生
图1  阴极极化理论原理示意图[22]
图2  FeS阴极去极化理论原理示意图[30]
图3  硫酸盐还原菌获得电子的不同方式示意图[37]
图4  生物催化阴极硝酸盐还原理论示意图[38]
图5  SRB浓差电池腐蚀机理图[43]
图6  EET的3种主要途径[45]
图7  321不锈钢在混合链球藻和SRB培养基中的腐蚀机理图[52]
图8  NRB与SRB相互作用示意图[71]
图9  混合SRB + IOB在不同阶段的腐蚀机理示意图[79]
Oxidation reactionΔG / kJ·mol-1
(1) H2S + 0.5O2 → S0 + H2O-210.2
(2) 4S0 + 3O2 + 4OH- → 2S2O32- + 2H2O-71.2
(3) 2S0 + O2 + H2O → S2O32- + 2H⁺-250.0
(4) S0 + 1.5O2 + H2O → SO42- + 2H⁺-500.0
(5) 2S2O32- + 0.5O2 + 2H⁺ → S4O62- + H2O-10.9
(6) S2O32- + 2O2 + H2O → 2SO42- + 2H⁺-418.7
(7) SO32- + 0.5O2 → SO42--250.0
(8) 5S2- + 2NO3- + 6H2O → 5S + N2 + 12OH--1168.4
表1  脱氮硫杆菌获得能量的典型生化反应[95]
图10  沈阳土壤浸出液中NRB和交流电流的腐蚀机理示意图[100]
图11  SRB直接获得阴保电子得到保护及从Fe获得电子造成腐蚀的示意图[107]
[1] Li L F. Analysis of interference and protection measures of high-voltage DC stray current on buried oil and gas pipelines [J]. China Pet. Chem. Stand. Qual., 2023, 43(4): 31
[1] 李凌风. 高压直流杂散电流对埋地油气管道的干扰及防护措施分析 [J]. 中国石油和化工标准与质量, 2023, 43(4): 31
[2] Dai M J, Liu J, Huang F, et al. Effect of cathodic protection potential fluctuations on pitting corrosion of X100 pipeline steel in acidic soil environment [J]. Corros. Sci., 2018, 143: 428
doi: 10.1016/j.corsci.2018.08.040
[3] Ryakhovskikh I V, Bogdanov R I, Ignatenko V E. Intergranular stress corrosion cracking of steel gas pipelines in weak alkaline soil electrolytes [J]. Eng. Failure Anal., 2018, 94: 87
doi: 10.1016/j.engfailanal.2018.07.036
[4] Cao Y X, Zou C J, Wang C J, et al. Green corrosion inhibitor of β-cyclodextrin modified xanthan gum for X80 steel in 1 M H2SO4 at different temperature [J]. J. Mol. Liq., 2021, 341: 117391
doi: 10.1016/j.molliq.2021.117391
[5] Wei B X, Qin Q Y, Bai Y L, et al. Short-period corrosion of X80 pipeline steel induced by AC current in acidic red soil [J]. Eng. Failure Anal., 2019, 105: 156
doi: 10.1016/j.engfailanal.2019.07.014
[6] Lekbach Y, Liu T, Li Y C, et al. Microbial corrosion of metals: The corrosion microbiome [J]. Adv. Microb. Physiol., 2021, 78: 317
doi: 10.1016/bs.ampbs.2021.01.002 pmid: 34147188
[7] Lang X Q, Zhao Z Y, Gong H, et al. Accidents statistical analysis and safety operation measures of the oil-gas pipeline [J]. Saf. Health Environ., 2006, 6(10): 15
[7] 郎需庆, 赵志勇, 宫 宏 等. 油气管道事故统计分析与安全运行对策 [J]. 安全、健康和环境, 2006, 6(10): 15
[8] Zhu T, Xie Y X, Sun W Q, et al. Statistical analysis and countermeasure research on pressure pipeline accidents [J]. Chem. Eng. Equip., 2025, (1): 133
[8] 诸 滔, 谢芸香, 孙维祺 等. 压力管道事故统计分析及对策研究 [J]. 化学工程与装备, 2025, (1): 133
[9] Liang M, Li J X, Xu W K, et al. Oil & gas storage and transportation system and enlightenment of transit transportation [J]. Oil Gas Storage Transp., 2022, 41(2): 121
[9] 梁 萌, 李俊霞, 徐文凯 等. 哈萨克斯坦油气储运系统与过境运输启示 [J]. 油气储运, 2022, 41(2): 121
[10] Yuan J, Qiu Z G, Shan G B, et al. Cause analysis of tube bundle corrosion of feed/reaction product heat exchanger of gasoline-diesel hydrogenation unit fractionator [J]. Saf. Health Environ., 2018, 18(2): 33
[10] 袁 军, 邱志刚, 单广斌 等. 汽柴油加氢装置分馏塔进料/反应产物换热器管束腐蚀原因分析 [J]. 安全、健康和环境, 2018, 18(2): 33
[11] Wang H B, Hu C, Zhang L L, et al. Effects of microbial redox cycling of iron on cast iron pipe corrosion in drinking water distribution systems [J]. Water Res., 2014, 65: 362
doi: 10.1016/j.watres.2014.07.042 pmid: 25150521
[12] Zhou J Y. The effect of marine biofilm formation ability on the corrosion behavior of X80 pipeline steel [D]. Shenyang: Northeastern University, 2019
[12] 周建元. 海洋细菌成膜能力对X80管线钢腐蚀行为影响研究 [D]. 沈阳: 东北大学, 2019
[13] Unsal T, Ilhan-Sungur E, Arkan S, et al. Effects of Ag and Cu ions on the microbial corrosion of 316L stainless steel in the presence of Desulfovibrio sp. [J]. Bioelectrochemistry, 2016, 110: 91
doi: 10.1016/j.bioelechem.2016.03.008 pmid: 27105168
[14] Liu H W, Cheng Y F. Microbial corrosion of initial perforation on abandoned pipelines in wet soil containing sulfate-reducing bacteria [J]. Colloids Surf., 2020, 190B: 110899
[15] Salgar-Chaparro S J, Lepkova K, Pojtanabuntoeng T, et al. Microbiologically influenced corrosion as a function of environmental conditions: A laboratory study using oilfield multispecies biofilms [J]. Corros. Sci., 2020, 169: 108595
doi: 10.1016/j.corsci.2020.108595
[16] Ashassi-Sorkhabi H, Moradi-Haghighi M, Zarrini G, et al. Corrosion behavior of carbon steel in the presence of two novel iron-oxidizing bacteria isolated from sewage treatment plants [J]. Biodegradation, 2012, 23: 69
doi: 10.1007/s10532-011-9487-8 pmid: 21695454
[17] Kato S. Microbial extracellular electron transfer and its relevance to iron corrosion [J]. Microb. Biotechnol., 2016, 9: 141
doi: 10.1111/1751-7915.12340 pmid: 26863985
[18] Huang Y, Liu S J, Jiang C Y. Microbiologically influenced corrosion and mechanisms [J]. Microbiol. China, 2017, 44: 1699
[18] 黄 烨, 刘双江, 姜成英. 微生物腐蚀及腐蚀机理研究进展 [J]. 微生物学通报, 2017, 44: 1699
[19] Wei B X. Corrosion mechanisms of X80 steel under disbonded coating under the AC, microorganisms, and stress [D]. Hefei: University of Science and Technology of China, 2022
[19] 韦博鑫. 交流电、微生物和应力作用下剥离涂层下X80钢腐蚀机理研究 [D]. 合肥: 中国科学技术大学, 2022
[20] Li Y X, Gong A J. Progress in studies on microbiologically influenced corrosion by sulfate-reducing bacteria [J]. Total Corros. Control, 2005, 19(1): 30
[20] 李迎霞, 弓爱君. 硫酸盐还原菌微生物腐蚀研究进展 [J]. 全面腐蚀控制, 2005, 19(1): 30
[21] von Wolzogen Kühr C A H, van der Vlugt L S. The graphitization of cast iron as an electro-biochemical process in anaerobic soils [J]. Water, 1934, 18: 147
doi: 10.3390/w18020147
[22] Javaherdashti R. A review of some characteristics of MIC caused by sulfate-reducing bacteria: Past, present and future [J]. Anti-Corros. Methods Mater., 1999, 46: 173
doi: 10.1108/00035599910273142
[23] Wei B X, Xu J, Gao L Q, et al. Research progress on sulfate reducing bacteria induced corrosion of pipeline steel in soil environment [J]. Surf. Technol., 2021, 50(3): 30
[23] 韦博鑫, 许 进, 高立群 等. 油气管线钢土壤环境硫酸盐还原菌腐蚀研究进展 [J]. 表面技术, 2021, 50(3): 30
[24] Booth G H, Tiller A K. Polarization studies of mild steel in cultures of sulphate-reducing bacteria [J]. Trans. Faraday Soc., 1960, 56: 1689
doi: 10.1039/tf9605601689
[25] Da Silva S, Basséguy R, Bergel A. The role of hydrogenases in the anaerobic microbiologically influenced corrosion of steels [J]. Bioelectrochemistry, 2002, 56: 77
pmid: 12009448
[26] Kip N, Van Veen J A. The dual role of microbes in corrosion [J]. ISME J., 2015, 9: 542
doi: 10.1038/ismej.2014.169 pmid: 25259571
[27] Yuan S J, Liang B, Zhao Y, et al. Surface chemistry and corrosion behaviour of 304 stainless steel in simulated seawater containing inorganic sulphide and sulphate-reducing bacteria [J]. Corros. Sci., 2013, 74: 353
doi: 10.1016/j.corsci.2013.04.058
[28] De Romero M, Duque Z, Rodríguez L, et al. A study of microbiologically induced corrosion by sulfate-reducing bacteria on carbon steel using hydrogen permeation [J]. Corrosion, 2005, 61: 68
doi: 10.5006/1.3278162
[29] Iverson W P. Corrosion of iron and formation of iron phosphide by Desulfovibrio desulfuricans [J]. Nature, 1968, 217: 1265
doi: 10.1038/2171265a0
[30] King R A, Miller J D A. Corrosion by the Sulphate-reducing Bacteria [J]. Nature, 1971, 233: 491
doi: 10.1038/233491a0
[31] Videla H A. An overview of mechanisms by which sulphate-reducing bacteria influence corrosion of steel in marine environments [J]. Biofouling, 2000, 15: 37
doi: 10.1080/08927010009386296 pmid: 22115290
[32] Li X, Shang D Z, Yu H B, et al. Research progress on oil & gas pipeline corrosion induced by SRB [J]. Surf. Technol., 2021, 50: 211
[32] 李 鑫, 尚东芝, 于浩波 等. 油气管道SRB腐蚀研究新进展 [J]. 表面技术, 2021, 50: 211
[33] Gu T Y. New understandings of biocorrosion mechanisms and their classifications [J]. J. Microb. Biochem. Technol., 2012, 4: 3
[34] Luo Z S, Li S Y, Luo J H. Numerical simulation of submarine pipeline corrosion induced by the interaction of SRB and mechanical stress [J]. J. Saf. Environ., 2025, 25: 946
[34] 骆正山, 李世宇, 骆济豪. SRB和应力耦合作用下海底管道腐蚀数值模拟研究 [J]. 安全与环境学报, 2025, 25: 946
[35] Gu T Y, Jia R, Unsal T, et al. Toward a better understanding of microbiologically influenced corrosion caused by sulfate reducing bacteria [J]. J. Mater. Sci. Technol., 2019, 35: 631
doi: 10.1016/j.jmst.2018.10.026
[36] Chen K F. Study on regulating mechanism of pitting corrosion of sulfate-reducing bacteria [D]. Beijing: China University of Petroleum (Beijing), 2021
[36] 陈柯霏. 硫酸盐还原菌点蚀调控机制研究 [D]. 北京: 中国石油大学(北京), 2021
[37] Li Y C, Xu D K, Chen C F, et al. Anaerobic microbiologically influenced corrosion mechanisms interpreted using bioenergetics and bioelectrochemistry: A review [J]. J. Mater. Sci. Technol., 2018, 34: 1713
doi: 10.1016/j.jmst.2018.02.023
[38] Xu D K, Li Y C, Song F M, et al. Laboratory investigation of microbiologically influenced corrosion of C1018 carbon steel by nitrate reducing bacterium Bacillus licheniformis [J]. Corros. Sci., 2013, 77: 385
doi: 10.1016/j.corsci.2013.07.044
[39] Starkey R L. The general physiology of the sulfate-reducing bacteria in relation to corrosion [J]. Prod. Month., 1958, 22: 12
[40] Booth G H, Tiller A K. Cathodic characteristics of mild steel in suspensions of sulphate-reducing bacteria [J]. Corros. Sci., 1968, 8: 583
doi: 10.1016/S0010-938X(68)80094-0
[41] Ringas C, Robinson F P A. Corrosion of stainless steel by sulfate-reducing bacteria-total immersion test results [J]. Corrosion, 1988, 44: 671
doi: 10.5006/1.3584982
[42] Zhang R J, Cao Z H, Zhang G X, et al. Research progress of SRB effect on corrosion of oil and gas pipelines [J]. Corros. Prot., 2021, 42(10): 68
[42] 张润杰, 曹振恒, 张贵雄 等. SRB对油气管道腐蚀影响的研究进展 [J]. 腐蚀与防护, 2021, 42(10): 68
[43] Jia R, Unsal T, Xu D K, et al. Microbiologically influenced corrosion and current mitigation strategies: A state of the art review [J]. Int. Biodeterior. Biodegrad., 2019, 137: 42
doi: 10.1016/j.ibiod.2018.11.007
[44] Fu Q. Corrosion behavior of X80 pipeline steel under the coupling action of mixed bacteria and stress [D]. Hefei: University of Science and Technology of China, 2023
[44] 付 琦. 混合菌和应力耦合作用下X80管线钢腐蚀行为研究 [D]. 合肥: 中国科学技术大学, 2023
[45] Liu X B, Shi L, Gu J D. Microbial electrocatalysis: Redox mediators responsible for extracellular electron transfer [J]. Biotechnol. Adv., 2018, 36: 1815
doi: S0734-9750(18)30125-3 pmid: 30196813
[46] Xie S Y, Chen S S, Luan T G. Characteristics and applications of extracellular polymeric substances of electroactive microorganisms [J]. Acta Microbiol. Sin., 2023, 63: 540
[46] 谢淑仪, 陈姗姗, 栾天罡. 电活性微生物胞外聚合物的特征与应用 [J]. 微生物学报, 2023, 63: 540
[47] Tang M F, Sheng G Y, Li C X, et al. The process of extracellular electron transfer based on cytochrome c [J]. Acta Microbiol. Sin., 2023, 63: 509
[47] 汤明芳, 盛光遥, 李长鑫 等. 基于细胞色素c的胞外电子传递过程 [J]. 微生物学报, 2023, 63: 509
[48] Gu Y Q, Guberman-Pfeffer M J, Srikanth V, et al. Structure of Geobacter cytochrome OmcZ identifies mechanism of nanowire assembly and conductivity [J]. Nat. Microbiol., 2023, 8: 284
doi: 10.1038/s41564-022-01315-5
[49] Tabari M Z, Hochbaum A I. Electron transport across the cell envelope via multiheme c-type cytochromes in Geobacter sulfurreducens [J]. Front. Chem., 2025, 13: 1621274
doi: 10.3389/fchem.2025.1621274
[50] Thirumurthy M A, Jones A K. Geobacter cytochrome OmcZs binds riboflavin: Implications for extracellular electron transfer [J]. Nanotechnology, 2020, 31: 124001
doi: 10.1088/1361-6528/ab5de6
[51] Liu X M, Zhou E Z, Fan Y Q, et al. Riboflavin-mediated extracellular electron transfer enhances microbiologically influenced corrosion of 316L stainless steel by Enterococcus faecalis [J]. Bioelectrochemistry, 2025, 165: 108982
doi: 10.1016/j.bioelechem.2025.108982
[52] Zhao T, He L J, Qiu Z H, et al. Synergistic effect between sulfate-reducing bacteria and Shewanella algae on corrosion behavior of 321 stainless steel [J]. J. Mater. Res. Technol., 2023, 26: 4906
doi: 10.1016/j.jmrt.2023.08.237
[53] Evans T E, Hart A C, Skedgell A N. The nature of the film on coloured stainless steel [J]. Trans. IMF, 1973, 51: 108
doi: 10.1080/00202967.1973.11870275
[54] Pope D H, Morris III E A. Some experiences with microbiologically influenced corrosion of pipelines [J]. Mater. Perform., 1995, 34: 23
[55] Liu X Y. Corrosion mechanism of sulfate-reducing bacteria (SRB) on pipelines and protective measures [J]. Total Corros. Control, 2023, 37(2): 96
[55] 刘浠尧. 硫酸盐还原菌(SRB)对管道腐蚀机理及防护措施 [J]. 全面腐蚀控制, 2023, 37(2): 96
[56] Diaz-Mateus M A, Salgar-Chaparro S J, Machuca L L, et al. Effect of deposit chemistry on microbial community structure and activity: Implications for under-deposit microbial corrosion [J]. Front. Microbiol., 2023, 14: 1089649
doi: 10.3389/fmicb.2023.1089649
[57] Sharma M, Liu H W, Tsesmetzis N, et al. Diagnosing microbiologically influenced corrosion at a crude oil pipeline facility leak site-A multiple lines of evidence approach [J]. Int. Biodeterior. Biodegrad., 2022, 172: 105438
doi: 10.1016/j.ibiod.2022.105438
[58] Yang J, Wang Z B, Qiao Y X, et al. Synergistic effects of deposits and sulfate reducing bacteria on the corrosion of carbon steel [J]. Corros. Sci., 2022, 199: 110210
doi: 10.1016/j.corsci.2022.110210
[59] Liu H W, Meng G Z, Li W H, et al. Microbiologically influenced corrosion of carbon steel beneath a deposit in CO2-saturated formation water containing Desulfotomaculum nigrificans [J]. Front. Microbiol., 2019, 10: 1298
doi: 10.3389/fmicb.2019.01298
[60] Liu H W, Zhong X K, Liu H F, et al. Microbiologically-enhanced galvanic corrosion of the steel beneath a deposit in simulated oilfield-produced water containing Desulfotomaculum nigrificans [J]. Electrochem. Commun., 2018, 90: 1
doi: 10.1016/j.elecom.2018.03.001
[61] Zhang J, Li X L, Wang J W, et al. Influence of calcareous deposit on corrosion behavior of Q235 carbon steel with sulfate-reducing bacteria [J]. J. Ocean Univ. China, 2017, 16: 1213
doi: 10.1007/s11802-017-3266-z
[62] Suarez E M, Lepková K, Forsyth M, et al. In situ investigation of under-deposit microbial corrosion and its inhibition using a multi-electrode array system [J]. Front. Bioeng. Biotechnol., 2022, 9: 803610
doi: 10.3389/fbioe.2021.803610
[63] Liu H X, Jin Z Y, Wang Z, et al. Corrosion inhibition of deposit-covered X80 pipeline steel in seawater containing Pseudomonas stutzeri [J]. Bioelectrochemistry, 2023, 149: 108279
doi: 10.1016/j.bioelechem.2022.108279
[64] Sun M Q, Yang J, Wang Z B, et al. Effect of coexistence of sulfate reducing bacteria and nitrate reducing bacteria on the under-deposit corrosion of carbon steel [J]. Corros. Sci., 2024, 231: 111958
doi: 10.1016/j.corsci.2024.111958
[65] Guo D, Duan J Z. Nitrate pollution accelerated the microbial corrosion of Fe0: A simulated corrosion verification for understanding marine corrosion phenomenological model [J]. Bioelectrochemistry, 2025, 164: 108942
doi: 10.1016/j.bioelechem.2025.108942
[66] Suarez E M, Lepkova K, Kinsella B, et al. Aggressive corrosion of steel by a thermophilic microbial consortium in the presence and absence of sand [J]. Int. Biodeterior. Biodegrad., 2019, 137: 137
doi: 10.1016/j.ibiod.2018.12.003
[67] Wang J P, Zhang Y, Liu H W, et al. Fungal corrosion behavior and mechanism of deposit-covered aluminum alloy 7075 in marine environment [J]. Trans. Nonferrous Met. Soc. China, 2025, 35: 1406
doi: 10.1016/S1003-6326(24)66757-9
[68] Shen Y F, Ma R Y, Wang C G, et al. Influence of Shewanella algae and calcium-magnesium deposit layer on the corrosion mechanism of X80 carbon steel in marine environment [J]. Mater. Des., 2025, 254: 114017
doi: 10.1016/j.matdes.2025.114017
[69] Li Z, Sun W Y, Zhou H W, et al. Advanced microbial technologies for in-depth studies of microbiologically influenced corrosion and its mitigation [J]. Corros. Sci., 2025, 256: 113211
doi: 10.1016/j.corsci.2025.113211
[70] Prajapat G, Jain S, Lal B, et al. Control of reservoir souring by incomplete nitrate reduction in Indian oil fields [J]. Bioresour. Technol. Rep., 2023, 21: 101302
[71] Hubert C, Voordouw G. Oil field souring control by nitrate-reducing Sulfurospirillum spp. that outcompete sulfate-reducing bacteria for organic electron donors [J]. Appl. Environ. Microbiol., 2007, 73: 2644
doi: 10.1128/AEM.02332-06
[72] Fan F Q, Zhang B Y, Liu J B, et al. Towards sulfide removal and sulfate reducing bacteria inhibition: Function of biosurfactants produced by indigenous isolated nitrate reducing bacteria [J]. Chemosphere, 2020, 238: 124655
doi: 10.1016/j.chemosphere.2019.124655
[73] Mahmoodi A, Kiapi M R A, Nick H M. When nitrate treatment wins the battle against microbial reservoir souring but loses the war [J]. Ecol. Modell., 2023, 481: 110329
doi: 10.1016/j.ecolmodel.2023.110329
[74] Hao Q Q, Zhang Y C, Shi R J, et al. Characterization and inhibition of hydrogen sulfide-producing bacteria from petroleum reservoirs subjected to alkali-surfactant-polymer flooding [J]. Bioresour. Technol., 2025, 418: 131961
doi: 10.1016/j.biortech.2024.131961
[75] Batmanghelich F, Li L, Seo Y. Influence of multispecies biofilms of Pseudomonas aeruginosa and Desulfovibrio vulgaris on the corrosion of cast iron [J]. Corros. Sci., 2017, 121: 94
doi: 10.1016/j.corsci.2017.03.008
[76] Liu X Z, Wang Y H, Song Y W, et al. The respective roles of sulfate-reducing bacteria (SRB) and iron-oxidizing bacteria (IOB) in the mixed microbial corrosion process of carbon steel pipelines [J]. Corros. Sci., 2024, 240: 112479
doi: 10.1016/j.corsci.2024.112479
[77] Xu C M, Zhang Y H, Cheng G X, et al. Pitting corrosion behavior of 316L stainless steel in the media of sulphate-reducing and iron-oxidizing bacteria [J]. Mater. Charact., 2008, 59: 245
doi: 10.1016/j.matchar.2007.01.001
[78] Nejad Ababaf A, Jafari E. Study of microbiologically influenced corrosion of the welded stainless steel 316L [J]. J. Mater. Eng. Perform., 2023, 32: 8162
doi: 10.1007/s11665-022-07718-z
[79] Lv M Y, Du M, Li X, et al. Mechanism of microbiologically influenced corrosion of X65 steel in seawater containing sulfate-reducing bacteria and iron-oxidizing bacteria [J]. J. Mater. Res. Technol., 2019, 8: 4066
doi: 10.1016/j.jmrt.2019.07.016
[80] Valencia-Cantero E, Peña-Cabriales J J, Martínez-Romero E. The corrosion effects of sulfate- and ferric-reducing bacterial consortia on steel [J]. Geomicrobiol. J., 2003, 20: 157
doi: 10.1080/01490450303885
[81] Javaherdashti R, Raman R K S, Pantel C, et al. Microbiologically assisted stress corrosion cracking of carbon steel in mixed and pure cultures of sulfate reducing bacteria [J]. Int. Biodeterior. Biodegrad., 2006, 58: 27
doi: 10.1016/j.ibiod.2006.04.004
[82] Sun Y, Wu Z Y, Lan J R, et al. Effect of sulfate-reducing bacteria (SRB) and dissimilatory iron-reducing bacteria (DIRB) coexistence on the transport and transformation of arsenic in sediments [J]. Water Res., 2025, 270: 122834
doi: 10.1016/j.watres.2024.122834
[83] Okoro C C, Ekeng E, Nwinyi O, et al. Analysis of microbial communities associated with corrosion in low Sulphate/saline oil bearing environment [J]. Sci. Total Environ., 2025, 986: 179737
doi: 10.1016/j.scitotenv.2025.179737
[84] Hirano S I, Ihara S, Wakai S, et al. Novel Methanobacterium strain induces severe corrosion by retrieving electrons from Fe0 under a freshwater environment [J]. Microorganisms, 2022, 10: 270
doi: 10.3390/microorganisms10020270
[85] Zhou E Z, Wang J J, Moradi M, et al. Methanogenic archaea and sulfate reducing bacteria induce severe corrosion of steel pipelines after hydrostatic testing [J]. J. Mater. Sci. Technol., 2020, 48: 72
doi: 10.1016/j.jmst.2020.01.055
[86] Rajala P, Huttunen-Saarivirta E, Bomberg M, et al. Corrosion and biofouling tendency of carbon steel in anoxic groundwater containing sulphate reducing bacteria and methanogenic archaea [J]. Corros. Sci., 2019, 159: 108148
doi: 10.1016/j.corsci.2019.108148
[87] Zhuang X, Wu J P, Liu X F, et al. The synergistic corrosion of carbon steel by sulfate-reducing bacteria and methanogenic archaea microbial communities [J]. Bioelectrochemistry, 2025, 166: 109015
doi: 10.1016/j.bioelechem.2025.109015
[88] Xu D K, Li Y C, Gu T Y. Mechanistic modeling of biocorrosion caused by biofilms of sulfate reducing bacteria and acid producing bacteria [J]. Bioelectrochemistry, 2016, 110: 52
doi: 10.1016/j.bioelechem.2016.03.003 pmid: 27071053
[89] Unsal T, Jia R, Kumseranee S, et al. Laboratory investigation of microbiologically influenced corrosion of carbon steel in hydrotest using enriched artificial seawater inoculated with an oilfield biofilm consortium [J]. Eng. Failure Anal., 2019, 100: 544
doi: 10.1016/j.engfailanal.2019.02.053
[90] Xu D K, Huang W, Ruschau G, et al. Laboratory investigation of MIC threat due to hydrotest using untreated seawater and subsequent exposure to pipeline fluids with and without SRB spiking [J]. Eng. Failure Anal., 2013, 28: 149
doi: 10.1016/j.engfailanal.2012.10.006
[91] Zhou X, Zhang Y, Sun C Y, et al. Study of autotrophic denitrification process conducted by Thiobacillus denitrificans utilizing FeS [J]. J. Dalian Univ. Technol., 2019, 59: 455
[91] 周 翔, 张 玉, 孙超越 等. 脱氮硫杆菌利用FeS自养反硝化过程研究 [J]. 大连理工大学学报, 2019, 59: 455
[92] She D Y, Xie X Z, Wang R P, et al. Inhibition of Thiobacillus denitrificans on SRB growth [J]. Genomics Appl. Biol., 2013, 32: 65
[92] 佘栋宇, 谢秀祯, 王锐萍 等. 脱氮硫杆菌对硫酸盐还原菌生长的抑制作用 [J]. 基因组学与应用生物学, 2013, 32: 65
[93] Liu H F, Wang M F, Xu L M. Characteristics of Thiobacillus denitrificans and the effect on the growth of SRB [J]. Microbiol. China, 2003, 30: 46
[93] 刘宏芳, 汪梅芳, 许立铭. 脱氮硫杆菌生长特性及其对SRB生长的影响 [J]. 微生物学通报, 2003, 30: 46
[94] Wang M F, Liu H F, Xu L M. Applied research on the competitive growth of bacteria in biological control of MIC [J]. J. Chin. Soc. Corros. Prot., 2004, 24(3): 159
[94] 汪梅芳, 刘宏芳, 许立铭. 细菌竞争生长在微生物腐蚀防治中的应用研究 [J]. 中国腐蚀与防护学报, 2004, 24(3): 159
[95] Zhang C C. A study on the homology modeling and interactions of the SoxY, SoxZ and SoxB in Thiobacillus denitrificans [D]. Guangzhou: South China University of Technology, 2015
[95] 张晨晨. 脱氮硫杆菌SoxY, SoxZ与SoxB蛋白的同源建模和相互作用研究 [D]. 广州: 华南理工大学, 2015
[96] Sun F Y, Yang X, Lu Y, et al. Influence of SRB on microbiological corrosion of X100 pipeline steel in saline soil [J]. Pipeline Tech. Equip., 2018, (5): 42
[96] 孙福洋, 杨 旭, 鲁 元 等. 盐渍性土壤中SRB对X100管线钢微生物腐蚀行为的影响 [J]. 管道技术与设备, 2018, (5): 42
[97] Liu H W, Cheng Y F. Microbial corrosion of X52 pipeline steel under soil with varied thicknesses soaked with a simulated soil solution containing sulfate-reducing bacteria and the associated galvanic coupling effect [J]. Electrochim. Acta, 2018, 266: 312
doi: 10.1016/j.electacta.2018.02.002
[98] Xu Z X, Zhang F, Zhang T S, et al. Unique corrosion reinforcement mechanism of pipeline oil sludge with sulfate-reducing bacteria on X60 steel and the targeted long-term inhibition of dazomet delivery [J]. Corros. Sci., 2024, 228: 111792
doi: 10.1016/j.corsci.2023.111792
[99] Zhang T S, Xu Z X, Wan H H, et al. Dual corrosion promotion of pipeline steel in sea mud induced by sulfate reducing bacteria: Bacteria concentration cell and electronic conduction of the biofilms covered sand grains [J]. Corros. Sci., 2024, 232: 112005
doi: 10.1016/j.corsci.2024.112005
[100] Fu Q, Xu J, Wei B X, et al. Effect of alternating current and nitrate reducing bacteria on corrosion of X80 pipeline steel in Shenyang soil solution [J]. Eng. Failure Anal., 2021, 129: 105688
doi: 10.1016/j.engfailanal.2021.105688
[101] Qin Q Y, Wei B X, Bai Y L, et al. Effect of alternating current frequency on corrosion behavior of X80 pipeline steel in coastal saline soil [J]. Eng. Failure Anal., 2021, 120: 105065
doi: 10.1016/j.engfailanal.2020.105065
[102] Qin Q Y, Xu J, Wei B X, et al. Synergistic effect of alternating current and sulfate-reducing bacteria on corrosion behavior of X80 steel in coastal saline soil [J]. Bioelectrochemistry, 2021, 142: 107911
doi: 10.1016/j.bioelechem.2021.107911
[103] Qing Y C, Bai Y L, Xu J, et al. Effect of alternating current and sulfate-reducing bacteria on corrosion of X80 pipeline steel in soil-extract solution [J]. Materials, 2019, 12: 144
doi: 10.3390/ma12010144
[104] Dehghani S, Rezaee A, Hosseinkhani S. Effect of alternating electrical current on denitrifying bacteria in a microbial electrochemical system: Biofilm viability and ATP assessment [J]. Environ. Sci. Pollut. Res., 2018, 25: 33591
doi: 10.1007/s11356-018-3170-0
[105] Guan F, Zhai X F, Duan J Z, et al. Progress on influence of cathodic polarization on sulfate-reducing bacteria induced corrosion [J]. J. Chin. Soc. Corros. Prot., 2018, 38: 1
[105] 管 方, 翟晓凡, 段继周 等. 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
[106] Li S Y, Kim Y G, Jeon K S, et al. Microbiologically influenced corrosion of carbon steel exposed to anaerobic soil [J]. Corrosion, 2001, 57: 815
doi: 10.5006/1.3280616
[107] Liu T, Cheng Y F. The influence of cathodic protection potential on the biofilm formation and corrosion behaviour of an X70 steel pipeline in sulfate reducing bacteria media [J]. J. Alloy. Compd., 2017, 729: 180
doi: 10.1016/j.jallcom.2017.09.181
[108] 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
[109] 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
doi: 10.1016/j.corsci.2015.09.023
[110] Gao Z B, Wang D, Jiang J T, et al. Effects of magnetic field on corrosion behaviour of X100 pipeline steel in simulated soil solution containing sulphate-reducing bacteria [J]. Int. J. Electrochem. Sci., 2021, 16: 211247
doi: 10.20964/2021.12.48
[111] Chen B, Liu H W, Wu Y N, et al. Influence of static magnetic field on microbiologically induced corrosion of Cu-Zn alloy in SRB culture medium [J]. ECS Trans., 2014, 59: 439
[112] Fojt L, Strašák L, Vetterl V. Extremely-low frequency magnetic field effects on sulfate reducing bacteria viability [J]. Electromagn. Biol. Med., 2010, 29: 177
doi: 10.3109/15368378.2010.513304 pmid: 20923330
[113] Li J H, Xie F, Wang D, et al. Effect of magnetic field on stress corrosion cracking induced by Sulfate-reducing bacteria [J]. Constr. Build. Mater., 2021, 303: 124521
doi: 10.1016/j.conbuildmat.2021.124521
[114] Wu M, Xie F, Chen X, et al. Research progress and thinking on corrosion failure of buried oil and gas pipelines [J]. Oil Gas Storage Transp., 2022, 41: 712
[114] 吴 明, 谢 飞, 陈 旭 等. 埋地油气管道腐蚀失效研究进展及思考 [J]. 油气储运, 2022, 41: 712
[1] 庞成泽, 邢少华, 杜敏, 徐铖. 海洋环境下铝合金腐蚀磨损研究进展[J]. 中国腐蚀与防护学报, 2026, 46(4): 962-970.
[2] 朱硕, 李光昊, 褚振华, 唐婉, 蒋全通, 许竞翔. 功能化MoS2 复合涂层的防腐抑菌性能研究[J]. 中国腐蚀与防护学报, 2026, 46(4): 1058-1066.
[3] 张进凯, 郭定, 杨金峰, 王亚楠, 段继周. 嗜硫小红卵菌对寡营养环境中硫酸盐还原菌腐蚀的抑制作用研究[J]. 中国腐蚀与防护学报, 2026, 46(2): 430-440.
[4] 张俊男, 彭灿, 付琦, 张亮, 宋光铃. 海洋环境中铜绿假单胞菌对增材制造Al-Mg-Sc-Zr合金腐蚀行为影响研究[J]. 中国腐蚀与防护学报, 2026, 46(1): 60-70.
[5] 李雨情, 张铁志, 黄兴林, 孙振美, 张怡, 尹衍升. 耐压海乳杆菌对2205双相不锈钢腐蚀行为的影响[J]. 中国腐蚀与防护学报, 2025, 45(6): 1619-1626.
[6] 邓艳, 彭子飘, 刘毅超, 钟显康. 一种新型含铜钛合金的制备与抗菌性能研究[J]. 中国腐蚀与防护学报, 2025, 45(6): 1649-1658.
[7] 杨宝齐, 闫茂成, 史显波, 高博文. 新型耐微生物腐蚀油管钢的硫酸盐还原菌腐蚀行为研究[J]. 中国腐蚀与防护学报, 2025, 45(6): 1755-1763.
[8] 郭章伟, 叶婷雨, 郭娜, 刘涛. EH36钢中MoSRB附着和腐蚀的影响及机理[J]. 中国腐蚀与防护学报, 2025, 45(5): 1341-1350.
[9] 黄诗雨, 刘士琛, 杨淞普, 刘家兵, 李刚, 郭娜, 刘涛. FH40船用钢在模拟极地海水环境中的腐蚀与磨蚀行为[J]. 中国腐蚀与防护学报, 2025, 45(4): 859-868.
[10] 张维智, 冯思乔, 宋霄鹏, 刘艾华, 唐德志, 闫茂成, 韩恩厚. 聚合物驱集输管道微生物腐蚀行为实验研究[J]. 中国腐蚀与防护学报, 2025, 45(4): 1098-1106.
[11] 戚鹏, 王鹏, 曾艳, 张盾. 微生物腐蚀的检测方法和预测模型[J]. 中国腐蚀与防护学报, 2025, 45(3): 602-610.
[12] 姜慧芳, 刘扬豪, 刘莹, 李迎超, 于浩波, 赵博, 陈曦. 地下储氢库J55钢氢环境下微生物腐蚀机理研究[J]. 中国腐蚀与防护学报, 2025, 45(2): 347-358.
[13] 许竞翔, 黄睿阳, 褚振华, 蒋全通. FeNiCoCrW0.2Al0.1 高熵合金在硫酸盐还原菌溶液环境下的腐蚀研究[J]. 中国腐蚀与防护学报, 2025, 45(2): 460-468.
[14] 燕冰川, 曾云鹏, 张宁, 史显波, 严伟. 石油管材用含Cu钢焊接接头的微生物腐蚀研究[J]. 中国腐蚀与防护学报, 2025, 45(2): 479-488.
[15] 王娅利, 管方, 段继周, 张丽娜, 杨政险, 侯保荣. 鼠李糖脂与2,2-二溴-3-次氮基丙酰胺协同抑制X80管线钢的微生物腐蚀[J]. 中国腐蚀与防护学报, 2024, 44(6): 1412-1422.