Long-term isothermal aging behavior up to 30,000h has been investigated in V-modified 2.25Cr-1Mo steels. When impurity elements were added, FATT in Charpy impact test vs. aging time curves showed basically of parabolic type, indicating the importance of segregation of impurities as the critical factor in controlling temper embrittlement. On the other hand, when the amount of impurities was small, FATT showed complex behavior with aging time. This suggests the importance of other factors in controlling temper embrittlement such as recovery of dislocations and enlargement of various carbide precipitates. When the degree of temper embrittlement after aging is compared in terms of the increase in FATT due to aging between the modified steels and the conventional 2.25Cr-1Mo steels, it is found to be small in the modified steel at the same impurity level (J-factor). It was also found that the modified steels showed no hydrogen embrittlement. No change was observed in FATT after hydrogen charge on the contrast to the conventional steel, which showed significant increase in FATT. This effect has been attributed to the small amount of diffusible hydrogen content in the modified steel by the presence of hydrogen trapping sites, which is present even after long-term isothermal aging.
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ASME/JSME 2004 Pressure Vessels and Piping Conference
July 25–29, 2004
San Diego, California, USA
Conference Sponsors:
- Pressure Vessels and Piping Division
ISBN:
0-7918-4685-7
PROCEEDINGS PAPER
Long-Term Isothermal Aging Behavior of V-Modified 2.25Cr-1Mo Steels
H. Yaguchi
Kobe Steel, Ltd.
S. Murakami
Kobe Steel, Ltd.
N. Fujitsuna
Kobe Steel, Ltd.
T. Shinya
Kobe Steel, Ltd.
M. Yamada
Kobe Steel, Ltd.
T. Sakai
Kobe Steel, Ltd.
Paper No:
PVP2004-3067, pp. 161-176; 16 pages
Published Online:
August 12, 2008
Citation
Yaguchi, H, Murakami, S, Fujitsuna, N, Shinya, T, Yamada, M, & Sakai, T. "Long-Term Isothermal Aging Behavior of V-Modified 2.25Cr-1Mo Steels." Proceedings of the ASME/JSME 2004 Pressure Vessels and Piping Conference. Storage Tank Integrity and Materials Evaluation. San Diego, California, USA. July 25–29, 2004. pp. 161-176. ASME. https://doi.org/10.1115/PVP2004-3067
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