Corrosion Resistant Plates for Pipes Operated in Sour Environments

Article Preview

Abstract:

Based on physical metallurgy principles, specialists of Severstal and I. P. Bardin Institute developed chemical composition and manufacture technology for microalloyed steel plates for sour service line pipes with minimum guaranteed tensile strength 510 MPa, produced by TMCP (thermo-mechanical controlled process). The key elements of newly developed technology were: low-carbon, low-manganese chemical composition with balanced microalloying; production of clean steel in melting shop; microstructure control during all stages of manufacture process.

You have full access to the following eBook

Info:

[1] NACE Standard TM0284-2011 Evaluation of Pipeline and Pressure Vessel Steels for Resistanse to Hidrogen-Induced Cracking, Houston, Texas, (2011).

Google Scholar

[2] NACE Standard TM0177-2005. Laboratory Testing of Metals for Resistance to Sulfide Stress Cracking and Stress Corrosion Cracking in H2S Environments. Houston, Texas, (2005).

Google Scholar

[3] Nakasugi H., Matsuda H. Development of new line-pipe steels for sour-gas service. – Nippon steel Techn. Rep. 1979, №14, р. 66-78.

Google Scholar

[4] Treseder R., Swanson T. Factors in sulfide corrosion cracking of high strengthsteels. – Corrosion, 1968, v. 24, №2, pp.31-37.

DOI: 10.5006/0010-9312-24.2.31

Google Scholar

[5] Schrӧder J., Schwinn V., Liessem A. Recent development of sour service line pipe steels. –Europipe, Technical Publications from (2006).

Google Scholar

[6] Kalwa C., Hillenbrand H-G. Europipe's experience and developments on pipe materials for sour service applications. Sour Service Seminar, Brazil, SanPaulo, (2012).

Google Scholar

[7] Ogibayashi S. en al., Control of Center Segregation in Continuous Cast Slab for Sour Gas Service Line Pipe Steels, 7th Japan-Germany Seminar, Germany, Dusseldorf, 1987, 309.

Google Scholar

[8] Ishikawa N., Endo Sh., Muraoka., Kakihara Sh., Kondo J., Material Design of High Strength/Heavy Gauge Linepipes for Sour Service, Sour Service Seminar, Brazil, SanPaulo, (2012).

Google Scholar

[9] Townsend H. Hydrogen sulfide stress corrosion cracking of high strength steels wire. – Corrosion, 1972, v. 28, №2, pp.39-46.

DOI: 10.5006/0010-9312-28.2.39

Google Scholar

[10] Li.J., Oriani R., Darken L. The thermodynamic of stressed solids. – Zeitschrift fur physic. Chem N.F., 1966, Bd49, № 3-5, pp.271-290.

Google Scholar

[11] W. Haumann and O. Koch, 3R international 25 (1986), No. 5, pp.261-266.

Google Scholar

[12] Niobium Information No. 18/01, CBMM/NPC, Dusseldorf (Germany), (2001).

Google Scholar

[13] M. Iino, N. Nomura, H. Takezawa and T. Takeda, 1st Int. Conf. On Current Solutions for Hydrogen Problems in Steel, Washington (DC), Nov. (1982).

Google Scholar