Browse > Article
http://dx.doi.org/10.5695/JKISE.2015.48.6.329

The Influence of Heat Treatment Temperature on Microstructure and Corrosion Behavior of SDSS Tube  

Lee, Insup (Department of Advanced Materials Engineering, Dongeui university)
Cheon, Chang-seok (Department of Advanced Materials Engineering, Dongeui university)
Yim, Tai-Hong (Korea Institute of Industrial Technology)
Han, Yoon-Ho (Korea Institute of Industrial Technology)
Lee, Myon-Hag (TRIS)
Publication Information
Journal of the Korean institute of surface engineering / v.48, no.6, 2015 , pp. 329-334 More about this Journal
Abstract
The aim of this paper is to determine the proper heat treatment temperature for SDSS tube production without ${\sigma}$-phase precipitation. When Mother steel tube was heat treated at $800^{\circ}C$ temperature, relatively a large amount of ${\sigma}$-phase precipitated and grain refinement of ferrite phase occurred simultaneously. However, in Pilgered and Drawn steel tubes, grain refinement of the ferrite phase did not occur and a small amount of ${\sigma}$-phase precipitated. For all three types of steel tubes, the pitting potential was reduced to 2/5 or less compared with the untreated one and corrosion also occurred in the salt spray test due to the precipitation of ${\sigma}$-phase. When heat treatment temperature was $900^{\circ}C$, grain refinement of the ferrite phase occurred and very little ${\sigma}$-phase precipitated in Pilgered and Drawn steel tubes. But when heat treatment was done at $1,000^{\circ}C$ temperature, all three types of steel tubes had a similar corrosion properties of that of untreated one and also corrosion did not occur in the salt spray test, as ${\sigma}$-phase did not precipitate. Therefore, the optimum heat treatment temperature range is determined to be more than $1000^{\circ}C$ for the SDSS at which corrosion does not occur.
Keywords
${\sigma}$-phase precipitation; corrosion resistance; hardness; super duplex stainless steel;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 S. H. Ahn, H. J. Kang, H. S. Seo, K. W. Nam and K. C. Lee, J. Kor. Oce. Eng. Tech., 23 (2009) 85.
2 J. H. Lee, G. J. Seo, B. H. Jung and C. Y. Kang, J. Kor. Pow. Sys. Eng., 18 (2014) 70.
3 H. J. Kang, K. W. Nam, S. H. Ahn, C. Y. Kang, J. Y. Do and I. D. Park, J. Kor. Oce. Eng. Tech., 17, No. 2 (2009) 40.
4 S. H. Byun, N. H. Kang, T. H. Lee, S. K. Ahn H. W. Lee, W. S. Chang and K. M. Cho, Met. Mater. Int., 18 (2012) 201.   DOI
5 J. Y. Do, J. H. Kim, S. H. Ahn, I. D. Park, C. Y. Kang and K. W. Nam, J. Kor. Inst. Met. & Mater., 40 (2002) 924.
6 S. C. Kim and C. Y. Kang, J. Kor. Oce. Eng. Tech., 23 (2009) 40.
7 S. C. Kim, H. G. Choi, Y. K. Kim, Y. T. Park, J. M. Lee, J. H. Park and C. Y. Kang, J. Kor. Oce. Eng. Tech., 23 (2009) 87.