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Acta Metall Sin  2004, Vol. 40 Issue (1): 103-108     DOI:
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Influence Of Zinc Content And Surface Contamination On The Electrochemical Behaviors Of Epoxy Zinc--Rich Primer
XIE Deming;HU Jiming; TONG Shaoping
Institute for Thermal Power Engineering; Zhejiang University
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XIE Deming; HU Jiming; TONG Shaoping. Influence Of Zinc Content And Surface Contamination On The Electrochemical Behaviors Of Epoxy Zinc--Rich Primer. Acta Metall Sin, 2004, 40(1): 103-108 .

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Abstract  The effect of zinc powder content and contamination of epoxy zinc--rich primer/substrate interface on the protective performance of the zinc--rich coatings was investigated by means of electrochemical impedance spectroscopy (EIS) and corrosion potential monitoring.The degradation mechanism of the zinc—rich coatings was elucidated.It was shown that effective barrier can not be formed in the coatings with low zinc content. The attack of zinc particles in zinc--rich coatings is explained in terms of diffusion control through the film of zinc corrosion products around the zinc particles. The surface contamination of the substrate is vital to the performance of the organic coatings protecting the substrate steel. The surface contamination will lead to not only the impairment of the performance of the zinc—rich coatings but also the acceleration of the degradation processes of the steel substrate.
Key words:  epoxy zinc--rich primer      electrochemical impedance spectroscopy      
Received:  01 January 1900     
ZTFLH:  TG174  
  O646  

URL: 

https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2004/V40/I1/103

[1] Du C S. Corros Protect, 1999; 20(4) : 168, 153 (杜存山.腐蚀与防护.1999;20(4) :168,153)
[2] Kendig M K, Jeanjaquet S L, White J, Momsfeld F. Corrosion Protection by Organic Coatings. Vol. 87-2, Thousand Oaks, CA USA: The Electrochemical Society, 1987: 253
[3] Hare C H. J Protect Coat Linings, 1998; 15(8) : 29
[4] Zhang J Q, Cao C N. Corros Protect, 1998; 19(3) : 99 (张鉴清,曹楚南.腐蚀与防护,1998;19(3) :99)
[5] Feliu S, Barajas R, Bastidas J M, Morcillo M. J Coat Technol, 1989; 61(775) : 63
[6] Feliu S, Barajas R, Bastidas J M, Morcilto M. J Coat Technol, 1989; 61(775) : 71
[7] Uhlig H H, Revie R W. Corrosion and Corrosion Control. 3rd ed., New York: Wiley, 1985: 227
[8] Almeida E, Pereira D, Cabral A M, Morcillo M. J Oil Color Chem Associat, 1991; 21
[9] Faidi S E, Scantlebury J D, Bullivant P. Corros Sci, 1993; 35: 1319
[10] Feliu S Jr, Morcillo M, Feliu S. Corrosion, 2001; 57: 591
[11] Frydrych P J, Farrington G C, Townsend H E. Proc Electrochem Soc, 1987; 87(2) : 240
[12] Novoa X R, Izquierdo M, Merino P, Espada L, Mater Sci Forum, 1989; 44-45: 223
[13] Gervasi C A, Di Sarli A R, Cavalcanti E, Ferraz P. Bucharsky E C, Real S G, Vilche J R. Corros Sci, 1994; 36: 1963
[14] Izquierdo M, Novoa X R, Pena G, Espada L. Mater Sci Forum, 1992; 111-112: 257
[15] Zhang J Q. J Chin Soc Corros Protect, 1996; 16: 175 (张鉴清.中国腐蚀与防护学报, 1996: 16: 175)
[16] Hare Clive H. Paint Coat, 1982; (4) : 48
[17] Hare Clive H. Wright S J. J Coat Technol, 1982; 54(693) : 65
[18] Giudice C B, Linares M M. Surf Coat Int, 1997; (6) : 279
[19] Feliu S Jr, Morcillo M, Bastidas J M, Feliu S. J Coat Technol, 1991; 63(793) : 31
[20] Abreu C M, Izquierdo M, Keddam M, Novoa X R, Takenouti H. Electrochim Acta, 1996; 41: 2405
[21] Morcillo M, Barajas R, Feliu S, Bastidas J M. J Mater Sci, 1990; 25: 2441
[22] Xie D M. Ph D Thesis, Zhejiang University, Hangzhou, 2002: 32(谢德明.浙江大学博士学位论文,杭州,2002:32)
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