Acta Petrolei Sinica ›› 2021, Vol. 42 ›› Issue (9): 1247-1254.DOI: 10.7623/syxb202109011
Previous Articles Next Articles
Yang Yong, Luo Yanlong, Sun Ming, Wang Junqiang
Received:2020-07-03
Revised:2021-03-22
Online:2021-09-25
Published:2021-10-12
杨永, 罗艳龙, 孙明, 王俊强
通讯作者:
王俊强,男,1983年4月生,2007年获东北石油大学学士学位,2012年获中国石油大学(北京)博士学位,现为中国特种设备检测研究院高级工程师,主要从事压力管道检验与完整性评价等技术研究。Email:wjqiang418@sina.com
作者简介:杨永,男,1979年5月生,2001年获安徽理工大学学士学位,2020年获北京工业大学博士学位,现为中国特种设备检测研究院高级工程师,主要从事油气管道安全检测评价及杂散电流腐蚀研究工作。Email:iyangyong@126.com
基金资助:CLC Number:
Yang Yong, Luo Yanlong, Sun Ming, Wang Junqiang. Research advances in stray alternating current corrosion of oil and gas pipelines[J]. Acta Petrolei Sinica, 2021, 42(9): 1247-1254.
杨永, 罗艳龙, 孙明, 王俊强. 油气管道交流杂散电流腐蚀研究进展[J]. 石油学报, 2021, 42(9): 1247-1254.
Add to citation manager EndNote|Ris|BibTeX
| [1] 李自力, 杨燕. 金属管道交流腐蚀研究新进展[J]. 石油学报, 2012, 33(1):164-171. LI Zili, YANG Yan.New progress in studying alternating current corrosion on metal pipelines[J]. Acta Petrolei Sinica, 2012, 33(1):164-171. [2] KULMAN F E.Effect of alternating currents in causing corrosion[J]. Corrosion Engineering Digest, 1961, 10(9):418-420. [3] GUMMOW R A, WAKELIN R G, SEGALL S M.AC corrosion:a new threat to pipeline integrity?[C]//1996 1st International Pipeline Conference.Calgary, Alberta, Canada:ASME, 1996. [4] LINHARDT P, BALL G.AC corrosion:results from laboratory investigations and from a failure analysis[C]//NACE International Corrosion Conference.Houston, USA:NACE, 2006. [5] MOVLEY C M.Pipeline corrosion from induced AC:two UK case histories[C]//Proceedings of NACE International Conference Corrosion 2005.Houston:NACE International, 2005. [6] 符耀庆, 王秀通, 陈胜利.南朗段埋地天然气管道杂散电流检测与治理[J]. 表面技术, 2016, 45(2):22-27. FU Yaoqing, WANG Xiutong, CHEN Shengli.Stray current detection and treatment for buried natural gas pipeline of Nanlang segment[J]. Surface Technology, 2016, 45(2):22-27. [7] 郭爱玲, 郑京召.湖南成品油管道杂散电流干扰检测评价及防护措施[J]. 油气田地面工程, 2018, 37(9):77-81. GUO Ailing, ZHENG Jingzhao.Detection, evaluation and preventive measures of stray current interference of product oil pipelines in Hunan[J]. Oil-Gasfield Surface Engineering, 2018, 37(9):77-81. [8] YANG Yong, SUN Ming, LUO Yanlong, et al.Effects of alternating current on corrosion behavior of X100 pipeline steel in simulated soil solution[J]. International Journal of Electrochemical Science, 2021, 16:150927. [9] 万红霞, 宋东东, 陈长风, 等.杂散电流与Cl-对碳钢腐蚀行为实验探索与设计[J]. 广州化工, 2021, 49(6):115-117. WANG Hongxia, SONG Dongdong, CHEN Changfeng.Experimental exploration and design of stray current and Cl- effect on carbon steel corrosion behavior[J]. Guangzhou Chemical Industry, 2021, 49(6):115-117. [10] FERNANDES S Z, MEHENDALE S G, VENKATACHALAM S.Influence of frequency of alternating current on the electrochemical dissolution of mild steel and nickel[J]. Journal of Applied Electrochemistry, 1980, 10(5):649-654. [11] HEIM G, HEIM T, HEINZEN H, et al.Investigation of corrosion of cathodically protected steel subjected to alternating currents[J]. 3 R International, 1993, 32:246. [12] LALVANI S B, ZHANG G.The corrosion of carbon steel in a chloride environment due to periodic voltage modulation:part II[J]. Corrosion Science, 1995, 37(10):1583-1598. [13] LALVANI S B, ZHANG G.The corrosion of carbon steel in a chloride environment due to periodic voltage modulation:part I[J]. Corrosion Science, 1995, 37(10):1567-1582. [14] FU A Q, CHENG Y F.Effects of alternating current on corrosion of a coated pipeline steel in a chloride-containing carbonate/bicarbonate solution[J]. Corrosion Science, 2010, 52(2):612-619. [15] GUO Yanbao, MENG Tao, WANG Deguo, et al.Experimental research on the corrosion of X series pipeline steels under alternating current interference[J]. Engineering Failure Analysis, 2017, 78:87-98. [16] 翁永基, 王宁.碳钢交流电腐蚀机理的探讨[J]. 中国腐蚀与防护学报, 2011, 31(4):270-274. WENG Yongji, WANG Ning.Carbon steel corrosion induced by alternating current[J]. Journal of Chinese Society for Corrosion and Protection, 2011, 31(4):270-274. [17] ZHU Min, DU Cuiwei, LI Xiaogang, et al.Effect of AC on corrosion behavior of X80 pipeline steel in high pH solution[J]. Materials and Corrosion, 2015, 66(5):486-493. [18] ZHU MIN, DU Cuiwei, LI Xiaogang, et al.Effect of AC current density on stress corrosion cracking behavior of X80 pipeline steel in high pH carbonate/bicarbonate solution[J]. Electrochimica Acta, 2014, 117:351-359. [19] ZHU Min, DU Cuiwei, LI Xiaogang, et al.Effect of AC on stress corrosion cracking behavior and mechanism of X80 pipeline steel in carbonate/bicarbonate solution[J]. Corrosion Science, 2014, 87:224-232. [20] 王新华, 张荣花, 刘强, 等.交流电对X70钢在大港土壤溶液中腐蚀行为研究[J]. 全面腐蚀控制, 2016, 30(11):67-72. WANG Xinhua, ZHANG Ronghua, LIU Qiang, et al.Study on alternating current corrosion behavior of X70 pipeline steel in Dagang soil solution[J]. Total Corrosion Control, 2016, 30(11):67-72. [21] 王新华, 杨国勇, 黄海, 等.埋地钢质管道交流杂散电流腐蚀规律研究[J]. 中国腐蚀与防护学报, 2013, 33(4):293-297. WANG Xinhua, YANG Guoyong, HUANG Hai, et al.AC stray current corrosion law of buried steel pipeline[J]. Journal of Chinese Society for Corrosion and Protection, 2013, 33(4):293-297. [22] 杨燕, 李自力, 文闯.交流电对X70钢表面形态及电化学行为的影响[J]. 金属学报, 2013, 49(1):43-50. YANG Yan, LI Zili, WEN Chuang.Effects of alternating current on X70 steel morphology and electrochemical behavior[J]. Acta Metallurgica Sinica, 2013, 49(1):43-50. [23] 付安庆, 吕乃欣, 白真权, 等.交流杂散电流对长输管线钢腐蚀行为的影响[J]. 油气储运, 2014, 33(7):748-756. FU Anqing, LÜ Naixin, BAI Zhenquan, et al.Impacts of AC stray current on the corrosion behavior of pipe steel for long-distance pipeline[J]. Oil & Gas Storage and Transportation, 2014, 33(7):748-756. [24] 朱敏, 刘智勇, 杜翠薇, 等.交流电对X80钢在酸性土壤环境中腐蚀行为的影响[J]. 材料工程, 2015, 43(2):85-90. ZHU Min, LIU Zhiyong, DU Cuiwei, et al.Effects of alternating current on corrosion behavior of X80 pipeline steel in acid soil environment[J]. Journal of Materials Engineering, 2015, 43(2):85-90. [25] 朱敏, 杜翠薇, 李晓刚, 等.交流电频率对X80管线钢在酸性土壤模拟溶液中腐蚀行为的影响[J]. 中国腐蚀与防护学报, 2014, 34(3):225-230. ZHU Min, DU Cuiwei, LI Xiaogang, et al.Effects of alternating current (AC)frequency on corrosion behavior of X80 pipeline steel in a simulated acid soil solution[J]. Journal of Chinese Society for Corrosion and Protection, 2014, 34(3):225-230. [26] 刘骋, 郭岩宝, 王德国, 等.交流杂散电流对X80管线钢腐蚀行为的影响[J]. 腐蚀与防护, 2015, 36(3):213-217. LIU Cheng, GUO Yanbao, WANG Deguo, et al.Effects of alternating stray current on corrosion behavior of X80 pipeline steel[J]. Corrosion & Protection, 2015, 36(3):213-217. [27] 寇杰, 付禹.交流杂散电流密度对X80管线钢腐蚀行为的影响[J]. 腐蚀与防护, 2018, 39(2):124-128. KOU Jie, FU Yu.Effects of AC stray current density on corrosion behavior of X80 pipeline steel[J]. Corrosion & Protection, 2018, 39(2):124-128. [28] WEI Boxin, XU Jin, QIN Qingyu, et al.Comparison of AC corrosion of X80 steel in real soil, soil extract solution, and simulated solution[J]. Journal of Materials Engineering and Performance, 2020, 29(8):4967-4977. [29] WEI Boxin, QIN Qingyu, FU Qi, et al.X80 steel corrosion induced by alternating current in water-saturated acidic soil[J]. Corrosion, 2020, 76(3):248-267. [30] PAGANO M A, LALVANI S B.Corrosion of mild steel subjected to alternating voltages in seawater[J]. Corrosion Science, 1994, 36(1):127-140. [31] XU Luyao, SU X, YIN Z X, et al.Development of a real-time AC/DC data acquisition technique for studies of AC corrosion of pipelines[J]. Corrosion Science, 2012, 61:215-223. [32] 王新华, 杨永, 陈迎春, 等.交流电流对X100管线钢在库尔勒土壤模拟液中腐蚀行为的影响[J]. 中国腐蚀与防护学报, 2020, 40(3):259-265. WANG Xinhua, YANG Yong, CHEN Yingchun, at al.Effect of alternating current on corrosion behavior of X100 pipeline steel in a simulated solution for soil medium at Korla District[J], Journal of Chinese Society for Corrosion and Protection, 2020, 40(3):259-265. [33] 杨永.X100管线钢交流杂散电流腐蚀行为及机理研究[D].北京:北京工业大学, 2020. YANG Yong.Research on corrosion behavior and mechanism of X100 pipeline steel in presence of ac stray current[D].Beijing:Beijing University of Technology, 2020. [34] JIANG Zitao, DU Yanxia, LU Minxu, et al.New findings on the factors accelerating AC corrosion of buried pipeline[J]. Corrosion Science, 2014, 81:1-10. [35] 谢丝莉, 杜艳霞, 高荣钊, 等.X70管线钢交流腐蚀的影响因素[J]. 腐蚀与防护, 2020, 41(2):7-13. XIE Sili, DU Yanxia, GAO Rongzhao, at al.AC corrosion influencing factors for X70 pipeline steel[J]. Corrosion & Protection, 2020, 41(2):7-13. [36] 马俊, 朱敏, 袁永锋, 等.交流干扰下不同组织X100钢在格尔木土壤模拟溶液中的腐蚀行为[J]. 表面技术, 2019, 48(8):272-279. MA Jun, ZHU Min, YUAN Yongfeng, et al.Corrosion behavior of X100 pipeline steel with different microstructures in simulated solution of Golmud soil under AC interference[J]. Surface Technology, 2019, 48(8):272-279. [37] 杨永, 王新华, 陈迎春, 等.交流干扰下X100管线钢及其热影响区在库尔勒土壤模拟液中的腐蚀行为[J]. 工程科学学报, 2020, 42(7):894-901. YANG Yong, WANG Xinhua, CHEN Yingchun, at al.Corrosion behavior of X100 pipeline steel and its heat-affected zones in simulated Korla soil solution under alternating current interference[J]. Chinese Journal of Engineering, 2020, 42(7):894-901. [38] 朱敏, 马俊, 袁永锋, 等.交流干扰下不同组织X65钢在酸性土壤模拟溶液中的腐蚀行为[J]. 材料热处理学报, 2018, 39(10):67-74. ZHU Min, MA Jun, YUAN Yongfeng, et al.Corrosion behavior of X65 pipeline steel with different microstructure in simulated solution of acidic soil under AC interference[J]. Transactions of Materials and Heat Treatment, 2018, 39(10):67-74. [39] 朱敏, 王亚铭, 袁永锋, 等.交流干扰下不同组织X80钢在碱性土壤环境中的腐蚀行为[J]. 材料热处理学报, 2019, 40(1):98-106. ZHU Min, WANG Yaming, YUAN Yongfeng, et al.Corrosion behavior of X80 pipeline steel with different microstructure under AC interference in alkaline soil environment[J]. Transactions of Materials and Heat Treatment, 2019, 40(1):98-106. [40] ZHU M, YANG J L, CHEN Y B, et al.Effect of alternating current on passive film and corrosion behavior of pipeline steel with different microstructures in carbonate/bicarbonate solution[J]. Journal of Materials Engineering and Performance, 2020, 29(1):423-433. [41] GELLINGS P J.The influence of alternating potential or current polarization on the corrosion rates of metals[J]. Electrochimica Acta, 1962, 7(1):19-24. [42] CHIN D T, VENKATESH S.A study of alternating voltage modulation on the polarization of mild steel[J]. Journal of the Electrochemical Society, 1979, 126(11):1908-1913. [43] CHIN D T, FU T W.Corrosion by alternating current:a study of the anodic polarization of mild steel in Na2SO4 solution[J]. Corrosion, 1979, 35(11):514-523. [44] BERTOCCI U.AC Induced Corrosion.The effect of an alternating voltage on electrodes under charge-transfer control[J]. Corrosion, 1979, 35(5):211-215. [45] LALVANI S B, LIN X A.A theoretical approach for predicting AC-induced corrosion[J]. Corrosion Science, 1994, 36(6):1039-1046. [46] LALVANI S B, LIN X.A revised model for predicting corrosion of materials induced by alternating voltages[J]. Corrosion Science, 1996, 38(10):1709-1719. [47] XIAO Haiyi, LALVANI S B.A linear model of alternating voltage-induced corrosion[J]. Journal of the Electrochemical Society, 2008, 155(2):C69-C74. [48] GHANBARI E, IANNUZZI M, LILLARD R S.The mechanism of alternating current corrosion of API grade X65 pipeline steel[J]. Corrosion, 2016, 72(9):1196-1210. [49] IBRAHIM I, MEYER M, TAKENOUTI H, et al.AC induced corrosion of underground steel pipelines under cathodic protection:III.Theoretical approach with electrolyte resistance and double layer capacitance for mixed corrosion kinetics[J]. Journal of the Brazilian Chemical Society, 2017, 28(8):1483-1493. [50] GOIDANICH S, LAZZARI L, ORMELLESE M.AC corrosion-Part 1:effects on overpotentials of anodic and cathodic processes[J]. Corrosion Science, 2010, 52(2):491-497. [51] ORMELLESE M, LAZZARI L, PEDEFERRI M, et al.Laboratory testing on the influence of alternated current on steel corrosion[C]//Corrosion 2004.Houston, TX:NACE, 2004. [52] 姜子涛, 杜艳霞, 董亮, 等.交流电对Q235钢腐蚀电位的影响规律研究[J]. 金属学报, 2011, 47(8):997-1002. JIANG Zitiao, DU Yanxia, DONG Liang, et al.Effect of ac current on corrosion potential of Q235 steel[J]. Acta Metallurgica Sinica, 2011, 47(8):997-1002. [53] 宋晓琴, 袁铃岚, 李佳佳, 等.交流电流密度对X70管道钢腐蚀行为的影响[J]. 材料保护, 2017, 50(8):36-41. SONG Xiaoqin, YUAN Linglan, LI Jiajia, et al.Impact of alternating current density on corrosion behavior of X70 pipeline steel[J]. Materials Protection, 2017, 50(8):36-41. [54] WANG Xinhua, SONG Xuting, CHEN Yingchun, et al.Corrosion behavior of X70 and X80 pipeline steels in simulated soil solution[J]. International Journal of Electrochemical Science, 2018, 13(7):6436-6450. [55] 张立军, 王立达, 孙文, 等.交流干扰对X80管线钢腐蚀电位的影响规律研究[J]. 材料保护, 2017, 50(3):91-94. ZHANG Lijun, WANG Lida, SUN Wen, et al.Effect of alternating current interference on corrosion potential of X80 pipeline steel[J]. Materials Protection, 2017, 50(3):91-94. [56] KUANG D, CHENG Y F.Understand the AC induced pitting corrosion on pipelines in both high pH and neutral pH carbonate/bicarbonate solutions[J]. Corrosion Science, 2014, 85:304-310. [57] ZHOU Jiayu, LI Zili, LIU Jianguo, et al.Effect of AC interference on hydrogen evolution reaction of X80 steel[J]. Anti-Corrosion Methods and Materials, 2020, 67(2):197-204. [58] BOSCH R W, BOGAERTS W F.A theoretical study of AC-induced corrosion considering diffusion phenomena[J]. Corrosion Science, 1998, 40(2/3):323-336. [59] IBRAHIM I, TRIBOLLET B, TAKENOUTI H, et al.AC-induced corrosion of underground steel pipelines.faradaic rectification under cathodic protection:I.theoretical approach with negligible electrolyte resistance[J]. Journal of the Brazilian Chemical Society, 2015, 26(1):196-208. [60] IBRAHIM I, MEYER M, TAKENOUTI H, et al.AC Induced corrosion of underground steel pipelines.faradaic rectification under cathodic protection:II.Theoretical approach with electrolyte resistance and double layer capacitance for Bi-Tafelian corrosion mechanism[J]. Journal of the Brazilian Chemical Society, 2015, 27(3):605-615. [61] MURALIDHARAN S, KIM D K, HA T H, et al.Influence of alternating, direct and superimposed alternating and direct current on the corrosion of mild steel in marine environments[J]. Desalination, 2007, 216(1/3):103-115. [62] GOIDANICH S, LAZZARI L, ORMELLESE M.AC corrosion.Part 2:parameters influencing corrosion rate[J]. Corrosion Science, 2010, 52(3):916-922. [63] WEN Chuang, LI Jingbo, WANG Shuli, et al.Experimental study on stray current corrosion of coated pipeline steel[J]. Journal of Natural Gas Science and Engineering, 2015, 27:1555-1561. [64] 王晓霖, 闫茂成, 舒韵, 等.破损涂层下管线钢的交流电干扰腐蚀行为[J]. 中国腐蚀与防护学报, 2017, 37(4):341-346. WANG Xiaolin, YAN Maocheng, SHU Yun, et al.AC interference corrosion of pipeline steel beneath delaminated coating with holiday[J]. Journal of Chinese Society for Corrosion and Protection, 2017, 37(4):341-346. [65] XU Luyao, SU X, CHENG Y F.Effect of alternating current on cathodic protection on pipelines[J]. Corrosion Science, 2013, 66:263-268. [66] GUO Yanbao, TAN Hai, MENG Tao, et al.Effects of alternating current interference on the cathodic protection for API 5L X60 pipeline steel[J]. Journal of Natural Gas Science and Engineering, 2016, 36:414-423. [67] SHABANGU T H, SHRIVASTAVA P, ABE B T, et al.Influence of AC interference on the cathodic protection potentials of pipelines:towards a comprehensive picture[C]//2017 IEEE AFRICON.Cape Town, South Africa:IEEE, 2017. [68] HE X, JIANG G, QIU Y, et al.Study of criterion for assuring the effectiveness of cathodic protection of buried steel pipelines being interfered with alternative current[J]. Materials and Corrosion, 2012, 63(6):534-543. [69] KUANG Da, CHENG Y F.Effects of alternating current interference on cathodic protection potential and its effectiveness for corrosion protection of pipelines[J]. Corrosion Engineering, Science and Technology, 2017, 52(1):22-28. [70] FU A Q, CHENG Y F.Effect of alternating current on corrosion and effectiveness of cathodic protection of pipelines[J]. Canadian Metallurgical Quarterly, 2012, 51(1):81-90. [71] FU A Q, CHENG Y F.Corrosion of pipeline steel in the presence of alternating current and the New CP recommendation[C]//2010 8th International Pipeline Conference.Calgary, Alberta, Canada:ASME, 2010. [72] ORMELLESE M, GOIDANICH S, LAZZARI L.Effect of AC interference on cathodic protection monitoring[J]. Corrosion Engineering, Science and Technology, 2011, 46(5):618-623. [73] WANG Liwei, CHENG Lianjun, LI Junru, et al.Combined effect of alternating current interference and cathodic protection on pitting corrosion and stress corrosion cracking behavior of X70 pipeline steel in near-neutral pH environment[J]. Materials, 2018, 11(4):465. [74] BRENNA A, LAZZARI L, PEDEFERRI M, et al.Cathodic protection condition in the presence of AC interference[J]. La Metallurgia Italiana, 2014, 106(6):29-34. [75] BRENNA A, ORMELLESE M, LAZZARI L.A proposal of AC corrosion mechanism of carbon steel in cathodic protection condition[C]//NACE Corrosion Conference.Orlando (FL):NACE, 2013. [76] WANG Huiru, DU Cuiwei, LIU Zhiyong, et al.Effect of alternating current on the cathodic protection and interface structure of X80 steel[J]. Materials, 2017, 10(8):851. [77] BVCHLER M, SCHONEICH H G.Investigation of alternating current corrosion of cathodically protected pipelines:development of a detection method, mitigation measures, and a model for the mechanism[J]. Corrosion, 2009, 65(9):578-586. [78] 唐德志.交流电流对埋地管道阴极保护系统的影响规律及作用机制研究[D].北京:北京科技大学, 2016. TANG Dezhi.Study of alternating current interference on cathodic protection system of buried pipeline[D].Beijing:University of Science and Technology Beijing, 2016. [79] BVCHLER M.On the mechanism of cathodic protection and its implications on criteria including AC and DC interference conditions[J]. Corrosion, 2020, 76(5):451-463. [80] 董亮, 路民旭, 杜艳霞, 等.埋地管道交流腐蚀的研究进展[J]. 中国腐蚀与防护学报, 2011, 31(3):173-178. DONG Liang, LU Minxu, DU Yanxia, et al.Investigation progress of alternating current corrosion on buried pipelines[J]. Journal of Chinese Society for Corrosion and Protection, 2011, 31(3):173-178. [81] 万红霞.交流电作用下X80钢近中性pH环境应力腐蚀行为及机理[D].北京:北京科技大学, 2018. WAN Hongxia.Stress corrosion cracking behavior and mechanism of X80 pipeline steel under alternating current application in near-neutral pH solution[D].Beijing:University of Science and Technology Beijing, 2018. [82] 王胜荣.交流电对X80钢在Cl-与HCO3-溶液中的腐蚀行为影响及其机理研究[D].北京:北京科技大学, 2016. WANG Shengrong.Corrosion behavior and mechanism of X80 steel in Cl- and HCO3- solution under the influence of alternating current (AC)[D].Beijing:University of Science and Technology Beijing, 2016. [83] YUNOVICH M, THOMPSON N G.AC corrosion:mechanism and proposed model[C]//2004 International Pipeline Conference.Calgary, Alberta, Canada:ASME, 2004. [84] IBRAHIM I, TAKENOUTI H, TRIBOLLET B, et al.Harmonic analysis study of the AC corrosion of buried pipelines under cathodic protection[C]//CORROSION 2007.Nashville, Tennessee:NACE, 2007. [85] JONES D A.Effect of alternating current on corrosion of low alloy and carbon steels[J]. Corrosion, 1978, 34(12):428-433. [86] LAZZARI L, GOIDANICH S, ORMELLESE M O M, et al.Influence of AC on corrosion kinetics for carbon steel, zinc and copper[C]//CORROSION 2005.Houston, Texas:NACE, 2005. [87] WANG L W, WANG X H, CUI Zhongyu, et al.Effect of alternating voltage on corrosion of X80 and X100 steels in a chloride containing solution-Investigated by AC voltammetry technique[J]. Corrosion Science, 2014, 86:213-222. [88] NIELSEN L V, NIELSEN K V, BAUMGARTEN B, et al.AC induced corrosion in pipelines:detection, characterization and mitigation[C]//CORROSION 2004.New Orleans, Louisiana:NACE, 2004. [89] NIELSEN L V, GALSGAARD F.Sensor technology for on-line monitoring of AC induced corrosion along pipelines[C]//CORROSION 2005.Houston, Texas:NACE International, 2005. [90] NIELSEN L V, APS M C, GLERUPVEJ, et al.On-site measurements of AC induced corrosion:effect of AC and DC parameters[C]//CeoCor conference, Dresden, German:2004.[s.l.]:[s.n.], 2004. [91] PANOSSIAN Z, FILHO S E, DE ALMEIDA N L, et al.Effect of alternating current by high power lines voltage and electric transmission systems in pipelines corrosion[C]//CORROSION 2009.Atlanta, Georgia:NACE, 2009. [92] 公维炜, 杨丙坤, 陈云, 等.扫描电化学显微镜原位观察碳钢涂层缺陷处的交流腐蚀行为[J]. 材料研究学报, 2020, 34(7):545-553. GONG Weiwei, YANG Bingkun, CHEN Yun, et al.In situ SECM observation of corrosion behavior of carbon steel at defects of epoxy coating under AC current conditions[J]. Chinese Journal of Materials Research, 2020, 34(7):545-553. [93] 孙兆强.埋地钢质管道受高铁交流干扰的数值模拟[J]. 腐蚀与防护, 2020, 41(8):39-45. SUN Zhaoqiang.Numerical simulation of AC interference from high-speed railway with buried steel pipeline[J]. Corrosion and Protection, 2020, 41(8):39-45. |
| [1] | Xing Haiyan, Han Qing, Zhang Hai, Zhao Liwei, Yan Junjie, Wang Suling, Gao Shenrou, Zhao Xiuhao. Reliability modeling of crack propagation in oil and gas pipeline steel based on the magneto-mechanical effect [J]. Acta Petrolei Sinica, 2026, 47(5): 1123-1132. |
| [2] | Zhang Xinsheng, Li Yayun, Wang Xiaowan. Maintenance strategy of corroded oil-gas pipeline based on inverse Gaussian process [J]. Acta Petrolei Sinica, 2017, 38(3): 356-362. |
| [3] | SHUAI Jian LIU Wei WANG Junqiang ZHANG Yukun . Stress analyses of repaired pipelines by enwinding composite materials [J]. Editorial office of ACTA PETROLEI SINICA, 2013, 34(2): 372-379. |
| [4] | WU Dehui, HUANG Songling, ZHAO Wei, XIN Junjun. Transient simulation analysis on magnetic flux leakage detection of cracks in long-distance oil and gas pipeline [J]. ACTA PETROLEI SINICA, 2009, 30(1): 136-140. |
| [5] | SHUAI Jian, ZHANG Chun'e, CHEN Fulai. Prediction of failure pressure in corroded pipelines based on non-linear finite element analysis [J]. Editorial office of ACTA PETROLEI SINICA, 2008, 29(6): 933-937. |
| [6] | Zhao Xinwei, Luo Jinheng, Zheng Maosheng, Li Helin, Zhang Hua. A method for predicting remaining life of pipeline with dispersion-type corrosion damage [J]. Editorial office of ACTA PETROLEI SINICA, 2006, 27(1): 119-123. |
| [7] | WENG Yong-ji. Quantitative risk assessment for failure of oil and gas pipelines [J]. Editorial office of ACTA PETROLEI SINICA, 2004, 25(5): 108-112. |
| [8] | WEI Mao-an, JIN Shi-jiu, LI Ying-ying, CUI Qian. Two-dimensional profile reconstruction and process technology for pipeline defect [J]. Editorial office of ACTA PETROLEI SINICA, 2003, 24(6): 98-101,106. |
| [9] | DONG Yu-hua, GAO Hui-lin, ZHOU Jing-en, FENG Yao-rong, HUO Chun-yong. Reliability estimation of oil and gas pipelines with some defects [J]. Editorial office of ACTA PETROLEI SINICA, 2003, 24(1): 96-99. |
| [10] | DONG Yu-hua. Fuzzy fault tree analysis method for assessing oil and gas pipeline’s fault [J]. Editorial office of ACTA PETROLEI SINICA, 2002, 23(4): 85-89. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
Copyright © 2021 Editorial Office of ACTA PETROLEI SINICA
Address:No. 6 Liupukang Street, Xicheng District, Beijing, P.R.China, 100724
Tel: 86-010-62067128, 86-010-62067137, 86-010-62067139
Fax: 86-10-62067130
Email: syxb@cnpc.com.cn
Support byBeijing Magtech Co.ltd, E-mail:support@magtech.com.cn