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Acta Metall Sin  2011, Vol. 47 Issue (8): 997-1002    DOI: 10.3724/SP.J.1037.2011.00040
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EFFECT OF AC CURRENT ON CORROSION POTENTIAL OF Q235 STEEL
JIANG Zitao, DU Yanxia, DONG Liang, LU Minxu
Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083
Cite this article: 

JIANG Zitao DU Yanxia DONG Liang LU Minxu. EFFECT OF AC CURRENT ON CORROSION POTENTIAL OF Q235 STEEL. Acta Metall Sin, 2011, 47(8): 997-1002.

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Abstract  With the rapid development of electricity, petroleum and transport industry, more and more pipelines are buried in parallel with high–voltage transmission lines or electrified railways, and the resulting AC corrosion phenomenon has attracted more attentions. In this work, the effects of AC current density, electrolyte composition and AC current frequency on corrosion potential of Q235 steel were studied through simulation experiments, and the results are as follows: AC current makes corrosion potential of Q235 steel deviate positively or negatively depending on polarization rate of anode/cathode within different electrolytes, and the offset of corrosion potential becomes more significant as the AC current density increases or the AC current frequency decreases. Besides, the inherent mechanism of such offset induced by AC current was also studied through double layer model of interface and corrosion products analyses.
Key words:  AC interference      corrosion potential      AC current density      frequency     
Received:  17 January 2011     
ZTFLH: 

TG171

 
Fund: 

Supported by Major Project of Beijing Natural Science Foundation (No.3080001) and Beijing Science and Technology Program of Major Projects (No.D08050303450802)

URL: 

https://www.ams.org.cn/EN/10.3724/SP.J.1037.2011.00040     OR     https://www.ams.org.cn/EN/Y2011/V47/I8/997

[1] Wakelin R G, Gummow R A, Segall S M. Corrosion–1998, Houston: NACE, 1998: 565

[2] Gummow R A, Wakelin R G, Segall S M. Corrosion–1998, Houston: NACE, 1998: 566

[3] Linhardt P, Ball G. Corrosion–2006, Houston: NACE, 2006: 160

[4] Wakelin R G. Corrosion–2004, Houston: NACE, 2004: 205

[5] Kim D K, Muralidharan S, Ha T H, Bae J H, Ha Y C, Lee H G, Scatlebury J D. Electrochim Acta, 2006; 51: 5259

[6] Muralidharan S, Kim D K, Ha T H, Bae J H, Ha Y C, Lee H G, Scantlebury J D. Desalination, 2007; 216: 103

[7] Ormellese M, Lazzari L, Brenna A. Corrosion–2010, Houston: NACE, 2010: 109

[8] Ormellese M, Lazzari L, Brenna A, Trombetta A. Corrosion–2010, Houston: NACE, 2010: 032

[9] Panossian Z, Filho S E A, de Almeida N L, Pereira Filho M L, Silva D D L, Laurino EW, Oliver J H D L, Pimenta G D S, Albertini J A D C. Corrosion–2009, Houston: NACE, 2009: 541

[10] Goidanich S, Lazzari L, Ormellese M. Corros Sci, 2010; 52: 916

[11] Goidanich S, Lazzari L, Ormellese, M. Corros Sci, 2010; 52: 491

[12] Bosch R W, Bogaerts W F. Corros Sci, 1998; 40: 323

[13] Lalvani S B, Lin X. Corros Sci, 1996; 38: 1709

[14] Bertocci U. Corrosion, 1979; 35: 211

[15] Fu A Q, Cheng Y F. Corros Sci, 2010; 52: 612

[16] Li Z L, Ding Q M, Zhang Y F, Li J J, Li S L. Corros Prot, 2010; 31: 436

(李自力, 丁清苗, 张迎芳, 李静静, 李胜利. 腐蚀与防护, 2010; 31: 436)

[17] Ying K H, Tang M H, Xiong X J. J Chin Soc Corros Prot, 1982; 2: 33

(尹可华, 唐明华, 熊祥键. 中国腐蚀与防护学报, 1982; 2: 33)

[18] Kulman F E. Corrosion, 1961; 17(3): 34

[19] Goidanich S, Lazzari L, Ormellese M, Pedeferri M. Corrosion–2005, Houston: NACE, 2005: 189

[20] Jones D A. Corrosion, 1978; 34: 428

[21] Cao C N. Principles of Electrochemistry of Corrosion. Beijing: Chemical Industry Press. 2008: 53

(曹楚楠. 腐蚀电化学原理. 北京: 化学工业出版社, 2008: 53)
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