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Susceptibility of Stainless Steel Weldments to Microbiologically Influenced Corrosion

Published online by Cambridge University Press:  01 January 1992

Susan Watkins Borenstein*
Affiliation:
Pacific Gas and Electric Co., PO Box 77000 F1634, San Francisco, CA 94106
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Abstract

Microbiologically influenced corrosion (MIC) is the term used for the phenomenon where corrosion is initiated or accelerated by microorganisms. Biofilms of bacteria form on metal surfaces when exposed to natural waters. The activity of these biofilms and how they attach themselves to metal surfaces directly influence corrosion mechanisms.

This paper describes the mechanisms for MIC and the factors which influence the susceptibility of austenitic stainless steel weidments to MIC. The metallurgical, microbiological and electrochemical factors that influence MIC are discussed. Case histories of MIC-related failures and field test results of austenitic stainless steel weldments in various welded conditions are presented.

Type
Research Article
Copyright
Copyright © Materials Research Society 1993

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References

REFERENCES

1. von Wolzogen Kuhr, C.A.H., van der Vulgt, L.S., Water 18, 147 (1934).Google Scholar
2. Pope, D.H., Duquette, D., Wayner, P., Johannes, A., and Freedman, A., Microbiologically Influenced Corrosion: A State-of-the-art review, MTI publication No. 13. (National Association of Corrosion Engineers, Houston, TX, 1989).Google Scholar
3. Licina, G.C., Sourcebook for Microbiologically Influenced Corrosion in Nuclear Power Plants', NP-5580 (Electric Power Research Institute, Palo Alto, CA, 1988).Google Scholar
4. Pope, D.H., A Study of MIC in Nuclear Power Plants and a Practical Guide for Countermeasures NP-4582 (Electric Power Research Institute, Palo Alto, CA, 1986).Google Scholar
5. Licina, G.C., Detection and Control of Microbiologically Influenced Corrosion, NP-6815-D (Electric Power Research Institute, Palo Alto, CA, 1990).Google Scholar
6. Pope, D.H., Microbial Corrosion in Fossil Fired Power Plants -A Study of Microbiologically Influenced Corrosion and a Practical Guide for its Treatment and Prevention (Electric Power Research Institute, Palo Alto, CA, 1987).Google Scholar
7. White, D.C., in Microbial Adhesion and Aggregation, edited by Marshall, K.C., (Springer-Verlag, New York, 1984), p. 159 .Google Scholar
8. Fontana, M., Corrosion Engineering (McGraw-Hill, New York, 1986), p.393.Google Scholar
9. Uhlig, H.H., Corrosion Handbook (John Wiley and Sons, Inc., New York, 1948), p. 466.Google Scholar
10. Characklis, W.G., in Microbial Adhesion and Aggregation, edited by Marshall, K.C., (Springer-Verlag, New York, 1984), p. 159.Google Scholar
11. White, D.C., in Microbial Adhesion and Aggregation, edited by Marshall, K.C., (Springer-Verlag, New York, 1984), p. 159.Google Scholar
12. Dowling, N.J., Guezennec, J., and White, D.C., in Microbial Problems in the Offshore Oil Industry, edited by Hill, E.C., (John Wiley and Sons, Chichester, U.K., 1987), p. 27.Google Scholar
13. Corpe, W.A., in Proceedings of Ocean Thermal Energy Conversion., edited by Gray, R.H. (Biofouling and Corrosion Symposium, 1977) pp. 3144.Google Scholar
14. American Welding Society, Introductory Welding Metallurgy, (1968), p. 40.Google Scholar
15. Lippold, J.C. and Savage, W.F., Welding Journal 59 (12), 362s (1979).Google Scholar
16. David, S.A., Welding Journal. Research Supplement. p.63s (1981).Google Scholar
17. Suutala, N., Takalo, T., and Moisio, T., Met. Trans. A, 10A, 512 (1979).Google Scholar
18. American Society for Metals, Metals Handbook, Welding, Brazing and Soldering, 9th ed., (Metals Park, Ohio, 1983), p. 117.Google Scholar
19. Peckner, D. and Bernstein, I.M., The Handbook of Stainless Steels (McGraw-Hill, New York, 1977), p. 14-15.Google Scholar
21. Lippold, J.C. and Savage, W.F., Welding Journal, 59 (12), p. 362s (1979).Google Scholar
22. Takalo, T., Suutala, N., and Moisio, T., Met. Trans. A, 78, p. 15 92 (1976).Google Scholar
23. American Society for Metals, Metals Handbook, Metals Park, OH, p. 675, 1986.Google Scholar
24. Parr, J.G. and Hanson, A., An Introduction to Stainless Steel (American Society for Metals, Metals Park, OH, 1965) p. 19.Google Scholar
25. Stalder, F. and Duquette, D.J., in Proceedings. 6th International Corrosion Association. Parkville, Australia, Extended Abstracts, (1975).Google Scholar
26. Garner, A., Corrosion, 35 (3), p.108, (1979).Google Scholar
27. Pawel, S.J., The Sensitization Behavior of Cast Stainless Steels Subjected to Weld Repair (MS Thesis, University. of Tennessee, 1983).Google Scholar
28. Szkalarska-Smialowska, Z., Pitting Corrosion of Metals (National Association of Corrosion Engineers, Houston, TX, 1986), p. 121.Google Scholar
29. Kearns, J.R., in Proceedings Corrosion/85, (50, NACE, Houston, TX, 1985).Google Scholar
30. Silence, W.L. and Flasche, L.H., in Proceedings Corrosion/86, (358, NACE, Houston, TX, 1986).Google Scholar
31. Uhlig, H.H., Corrosion Handbook (John Wiley and Sons, Inc., New York, 1948), p.466.Google Scholar
32. American Society for Metals Metals Handbook, Corrosion (American Society for Metals, Metals Park, OH, 1987), p. 115.Google Scholar
33. American Society for Metals Metals Handbook, Corrosion (American Society for Metals, Metals Park, OH, 1987), p. 117.Google Scholar
34. Kobrin, G. in Biologically Induced Corrosion, edited by Dexter, S.C., (NACE, Houston, TX, 1986), p. 33.Google Scholar
35. Tatnall, R.E., Materials Performance 20 (8), p. 41 (1981).Google Scholar
36. Kearns, J.R. and Borenstein, S.W., in Proceedings Corrosion/91 (NACE, Houston, TX. 1991), paper 279.Google Scholar
37. American Society for Metals Metals Handbook, Corrosion (American Society for Metals. Metals Park, OH, 1987), p. 547.Google Scholar