Research Status of Offshore Wind Power Corrosion Monitoring Technology

ZHANG Zhen,YIN Aiming,JIN Xuliang,WANG Haigang,NIE Jinfeng

Distributed Energy ›› 2022, Vol. 7 ›› Issue (5) : 39-45.

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Distributed Energy ›› 2022, Vol. 7 ›› Issue (5) : 39-45. DOI: 10.16513/j.2096-2185.DE.2207506
Application Technology

Research Status of Offshore Wind Power Corrosion Monitoring Technology

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Abstract

The corrosion of offshore wind power equipment will cause serious property losses and even endanger personal safety. The monitoring technology can continuously monitor the corrosion of equipment and maintain the safe and stable operation of the system. In this environment, probe technology, conventional monitoring technology, electrochemical technology and other corrosion monitoring technologies are summarized in this paper. Probe technology includes resistance probe, potential probe, couple probe, inductance probe, hydrogen probe and electrochemical probe. Electrochemical technology includes electrochemical impedance spectroscopy, electrochemical noise, photoelectrochemistry, corrosion potential, linear polarization resistance and other technologies. Conventional monitoring technologies include weightlessness, ultrasound, galvanic current, acoustic emission, thin layer activation, field image, coulostatic and other technologies. The principle, application, advantages and disadvantages of each technology are discussed respectively, the problems existing in the online corrosion technology are indicated, and the further research objectives are pointed out.

Key words

offshore wind power / corrosion monitoring / probe technology / electrochemical technology / routine monitoring technique

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Zhen ZHANG , Aiming YIN , Xuliang JIN , et al . Research Status of Offshore Wind Power Corrosion Monitoring Technology[J]. Distributed Energy Resources. 2022, 7(5): 39-45 https://doi.org/10.16513/j.2096-2185.DE.2207506

References

[1]
李理,范玉鹏,常志明,等. 海洋风电机组防腐蚀技术研究进展[J]. 分布式能源2021, 6(5): 51-58.
LI Li, FAN Yupeng, CHANG Zhiming, et al. Research progress of anti-corrosion technology for fffshore wind turbines[J]. Distributed Energy, 2021, 6(5): 51-58.
[2]
张丽,王敏,曹蕃,等. 海上风电涂层防腐型功能助剂研究进展[J]. 分布式能源2021, 6(6): 53-58.
ZHANG Li, WANG Min, CAO Fan, et al. Research progress of anticorrosive functional auxiliaries for offshore wind power coatings[J]. Distributed Energy, 2021, 6(6): 53-58.
[3]
易侃,张子良,张皓,等. 海上风能资源评估数值模拟技术现状及发展趋势[J]. 分布式能源2021. 6(1): 1-6.
YI Kan, ZHANG Ziliang, ZHANG Hao, et al. Technical status and development trends of numerical modeling for offshore wind resource assessment[J]. Distributed Energy, 2021, 6(1): 1-6.
[4]
李铮,郭小江,申旭辉,等. 我国海上风电发展关键技术综述[J]. 发电技术2022, 43(2): 186-197.
LI Zheng, GUO Xiaojiang, SHEN Xuhui, et al. Summary of technologies for the development of offshore wind power industry in China[J]. Power Generation Technology, 2022, 43(2): 186-197.
[5]
余浩,肖彭瑶,林勇,等. 大规模海上风电高电压穿越研究进展与展望[J]. 智慧电力2020, 48(3): 30-38.
YU Hao, XIAO Pengyao, LIN Yong, et al. Review on high voltage ride-through strategies for offshore doubly-fed wind farms[J]. Smart Power, 2020, 48(3): 30-38.
[6]
AGHAJANI A. In situ corrosion protection of oil risers and offshore piles[J]. Materials Performance, 2008, 47(4): 38-42.
[7]
薛宇,刘燕. 海上湿气对风力机翼型及叶片气动性能影响研究[J]. 分布式能源2016, 1(2): 21-27.
XUE Yu, LIU Yan. Influence of high humidity on the aerodynamic performance of offshore wind turbine airfoil/blade[J]. Materials Performance, 2016, 1(2): 21-27.
[8]
张炜强,秦立高,李飞. 腐蚀监测/检测技术[J]. 腐蚀科学与防护技术2009, 21(5): 477-479.
ZHANG Yiqiang, QIN Ligao, LI Fei. Techniques for corrosion inspection and monitoring[J]. Corrosion Science and Protection Technology, 2009, 21(5): 477-479.
[9]
向敏,李长俊,廖柯熹,等. 腐蚀在线监测系统可靠性研究[J]. 西南石油大学学报2007, 29(3): 157-159, 1.
XIANG Min, LI Changjun, LIAO Kexi, et al. Reliability of on-line corrosion monitoring system[J]. Journal of Southwest Petroleum University, 2007, 29(3): 157-159, 1.
[10]
GROYSMAN A. Corrosion monitoring: corrosion reviews[J]. Corrosion for Everybody, 2009, 27(4-5): 205-343.
[11]
陈凤琴,付冬梅,周珂,等. 电阻探针腐蚀监测技术的发展与应用[J]. 腐蚀科学与防护技术2017, 29(6): 669-674.
CHEN Fengqin, FU Dongmei, ZHOU Ke, et al. Development and application of corrosion resistance probe monitoring technology[J]. Corrosion Science and Protection Technology, 2017, 29(6): 669-674.
[12]
李琼玮,杨全安,董泽华,等. 高压天然气管道电阻法在线腐蚀监测仪:CN201218804[P]. 2009-04-08.
[13]
吴建华,赵永韬. 钢筋混凝土的腐蚀监测/检测[J]. 腐蚀与防护2003, 24(10): 421-427, 431.
WU Jianhua, ZHAO Yongtao. Corrosion monitoring/detecting of rebar in concrete[J]. Corrosion and Protection, 2003, 24(10): 421-427, 431.
[14]
LIU Chungshi. Corrosion monitoring sensors for durability assessment of concrete structures[J]. Proceedings of SPIE-The International Society for Optical Engineering, 2000, 3988(1): 32-39.
[15]
孙虎元,王在峰,黄彦良. 海洋腐蚀监测的发展现状及趋势[J]. 海湖盐与化工2005, 34(2): 33-37.
SUN Huyuan, WANG Zaifeng, HUANG Yanliang. Progress and trend of marine corrosion monitoring[J]. Journal of Salt Science and Chemical Industry, 2005, 34(2): 33-37.
[16]
梁来雨,李生,何利勇,等. 海洋工程装备腐蚀监测技术研究现状[J]. 全面腐蚀控制2020, 34(3): 29-33.
LIANG Laiyu, LI Sheng, HE Liyong, et al. Research status of corrosion and inspection technology for marine engineering equipment[J]. Total Corrosion Control, 2020, 34(3): 29-33.
[17]
丁莉. 海水淡化装置中TA2/HA177-2/316L SS腐蚀体系微区电化学行为和机理研究[D]. 青岛:中国石油大学,2016.
DING Li. Electrochemical behavior and mechanism of TA2/HA177-2/316L SS corrosion System in seawater desalination unit[D]. Qingdao: China University of Petroleum, 2016.
[18]
胡鹏飞,张慧霞,李相波,等. 电偶腐蚀研究方法综述[J]. 装备环境工程2020, 17(10): 110-117.
HU Pengfei, ZHANG Huixia, LI Xiangbo, et al. Summary of research methods for galvanic corrosion[J]. Equipment Environmental Engineering, 2020, 17(10): 110-117.
[19]
林玉珍. 腐蚀和腐蚀控制原理[M]. 北京:中国石化出版社,2007: 183-190.
[20]
张秀丽,马志力,李永立,等. 电厂锅炉给水系统金属材料的腐蚀在线监测[J]. 中国电机工程学报2018, 38(): 185-191.
Abstract
S1
ZHANG Xiuli, MA Zhili, LI Yongli, et al. On-line corrosion monitoring of metal materials in boiler feedwater system of power plants[J]. Proceedings of the CSEE, 2018, 38(): 185-191.
S1
[21]
王国昇,于南南,张卫斌. 常压塔顶挥发线电感探针腐蚀监测有效性研究[J]. 石油化工腐蚀与防护2021, 38(5): 49-52.
WANG Guosheng, YU Nannan, ZHANG Weibin. Study on corrosion monitoeffectiveness of induction probe in atmospheric tower line[J]. Corrosion and Protection in Petrochemical Industry, 2021, 38(5): 49-52.
[22]
韩崇刚. 腐蚀在线监测分析系统研究[D]. 北京:北京化工大学,2009.
HAN Chonggang. Research of corrosion online monitoring and analysis system[D]. Beijing: Beijing University of Chemical Technology, 2009.
[23]
欧阳跃军. 氢在钢中的扩散与氢渗透传感器的研究[D]. 长沙:湖南大学,2013.
OUYANG Yuejun. Hydrogen diffosion in steels and hydrogen permeation sensor[D]. Changsha: Hunan University, 2013.
[24]
冒家友,刘梁,蒲定,等. 一种新型电阻–电化学探针对管线钢磨损腐蚀的监测效果[J]. 腐蚀与防护2021, 42(2): 1-7.
MAO Jiayou, LIU Liang, PU Ding, et al. Monitoring effect of a novel electric resistance-electrochemistry sensor on erosion-corrosion of pipeline steel[J]. Corrosion and Protection, 2021, 42(2): 1-7.
[25]
张颖怀,许立宁,路民旭,等. 用电化学阻抗谱(EIS)研究环氧树脂涂层的防腐蚀性能[J]. 腐蚀与防护2007, 28(5): 227-230, 234.
ZHANG Yinghuai, XU Lining, LU Minxu, et al. An EIS study on the anticorrosion performance of epoxy resin coating[J]. Corrosion and Protection, 2007, 28(5): 227-230, 234.
[26]
POUPARD O, HOSTIS V L, CATINAUD S, et al. Corrosion damage diagnosis of a reinforced concrete beam after 40 years natural exposure in marine environment[J]. Cement and Concrete Research, 2006, 36(3): 504-520.
[27]
付安庆,邢少华,张胜涛,等. 交流阻抗技术监测碳钢在海洋大气中的腐蚀[J]. 腐蚀科学与防护技术2017, 19(4): 243-246.
FU Anqing, XING Shaohua, ZHANG Shengtao, et al. Marine atmosphere corrosion monitoring by means of AC impedance technique[J]. Corrosion Science and Protection Technology, 2017, 19(4): 243-246.
[28]
WINSTON REVIE R. 尤利格腐蚀手册[M]. 北京:化学工业出版社,2005: 2.
[29]
李健. 镁及镁合金若干腐蚀问题的研究[D]. 哈尔滨:哈尔滨工程大学,2011.
LI Jian. Research on several corrosion Issues of magnesium and its alloys[D]. Harbin: Harbin Engineering University, 2011.
[30]
BELL G E C, ROSENTHAL L M, LAWSON K. Electro-chemical noise corrosion monitoring field trial at cahn3 water treatment plant lost hills[J]. NACE, 2000, 3(26): 00412.
[31]
张晋,张涛,邵亚薇,等. 5083和6061铝合金缝隙腐蚀行为的研究[J]. 腐蚀科学与防护技术2014, 26(2): 125-131.
ZHANG Jin, ZHANG Tao, SHAO Yawei, et al. Crevice corrosion behavior of 5083 and 6061 aluminum alloys[J]. Corrosion Science and Protection Technology, 2014, 26(2): 125-131.
[32]
周国定. 光电化学方法在金属腐蚀研究中的应用[J]. 腐蚀与防护1999, 20(1): 40-41.
ZHOU Guoding. Application of photoelectrochemical methods in metal corrosion research[J]. Corrosion and Protection, 1999, 20(1): 40-41.
[33]
FOMICHEV A D, KURIN S Y, ERMAKOVI I A, et al. Photoelectrochemical corrosion of GaN-based p-n structures[J]. Journal of Physics Conference Series, 2016, 741(1): 012049.
[34]
张鉴清,冷文华,程小芳,等. 金属的光电化学方法防腐蚀原理及研究进展[J]. 中国腐蚀与防护学报2006, 26(3): 3188-3192.
ZHANG Jianqing, LENG Wenhua, CHENG Xiaofang, et al. Principle of photoelectrochemical approach for metal anticorrosion and current status[J]. Journal of Chinese Society for Corrosion and Protection, 2006, 26(3): 3188-3192.
[35]
周玉波,邵丽艳,李言涛,等. 腐蚀监测技术现状及发展趋势[J]. 海洋科学2005, 29(7): 77-80.
ZHOU Yubo, SHAO Liyan, LI Yantao, et al. Current status and trend of corrosion monitoring techniques[J]. Marine Sciences, 2005, 29(7): 77-80.
[36]
朱家玲,董海虹,孟宪级. 线性极化技术测试地热腐蚀速率的试验研究[J]. 太阳能学报2004, 25(5): 699-702.
ZHU Jialing, DONG Haihong, MENG Xianji. Study of linear polarization technique in geothermal system for corrosion ratio[J]. Acta Energiae Solaris Sinica, 2004, 25(5): 699-702.
[37]
张敏,黄红军,李志广,等. 金属腐蚀监测技术[J]. 腐蚀科学与防护技术2007, 19(5): 354-357.
ZHANG Min, HUANG Hongjun, LI Zhiguang, et al. Corrsion monition technique for metals[J]. Corrosion Science and Protection Technology, 2007, 19(5): 354-357.
[38]
尚恺喆,刘晓进,陈红丽. 基于超声波技术的城市地下天然气管道腐蚀缺陷检测方法[J]. 能源与环保2021, 43(11): 76-80.
SHANG Kaizhe, LIU Xiaojin, CHEN Hongli. Method for detecting corrosion defects of urban underground natural gas pipelines based on ultrasonic technology[J]. China Energy and Environmental Protection, 2021, 43(11): 76-80.
[39]
陈日辉,张聪,高新华,等. 工况下电偶腐蚀监检测技术的研究[C]//2018年全国腐蚀电化学及测试方法学术交流会论文集. 北京:中国腐蚀与防护学会腐蚀电化学及测试方法专业委员会,2018: 372-373.
[40]
蒋林林,李玲杰,苏碧煌,等. 声发射技术在储罐底板腐蚀检测中的应用[J]. 腐蚀与防护2021, 42(2): 56-59, 77.
JIANG Linlin, LI Lingjie, SU Bihuang, et al. Application of acoustic emission to corrosion detection of tank floor[J]. Corrosion and Protection, 2021, 42(2): 56-59, 77.
[41]
SAXENA R C, BISWAL J, PANT H J, et al. Application of thin layer activation technique for monitoring corrosion of carbon steel in hydrocarbon processing environment[J]. Applied Radiation and Isotopes, 2018, 135(5): 201-206.
[42]
吴承昊,姚万鹏,王思权,等. 电场指纹方法的国内外发展现状[J]. 腐蚀科学与防护技术2019, 31(1): 101-108.
WU Chenghao, YAO Wanpeng, WANG Siquan, et al. Development status of field signature method at domestic and foreign[J]. Corrosion Science and Protection Technology, 2019, 31(1): 101-108.
[43]
王子天. 原油罐底涂层失效过程的EIS研究及恒电量腐蚀检测仪的研制[D]. 长沙:湖南大学,2011.
WANG Zitian. The EIS study of the coating failure process in the bottom of crude oil storage tank and the preparation of coulostatic corrosion monitor[D]. Changsha: Hunan University, 2011.

Funding

Science and Technology Projects of Datang Guoxin Binhai Offshore Wind Power Co., Ltd.(CDSTI-SCB[2020]046)
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