ICF13A

13th International Conference on Fracture June 16–21, 2013, Beijing, China -7- References [1] G. Eggeler, A. Ramteke, M. Coleman, B. Chew, G. Peter, A. Burblies, J. Hald, C. Jefferey, J. Rantala, M. deWitte, R. Mohrmann, Analysis of creep in a welded P91 pressure vessel. International Journal of Pressure Vessels and Piping, 60 (1994) 237-257. [2] J.A. Francis, W. Mazur, H.K.D.H. Bhadeshia, Review-Type IV cracking in ferritic power plant steels. Materials Science and Technology, 22 (2006) 1387-1395. [3] F. Masuyama, Creep degradation in welds of Mod.9Cr-1Mo steel. International Journal of Pressure Vessels and Piping, 83 (2006) 819-825. [4] Y. Hasegawa, T. Muraki, M. Ohgami, Identification and formation mechanism of a deformation process determining microstructure of Type-IV creep damage of the advanced high Cr containing ferritic heat resistant Steel. Tetsu-to Hagane, 92 (2006) 609-617. [5] K. Kubushiro, S. Takahashi, K. Morishima, Degradation of microstructures during creep in high Cr steel weldment. Journal of the Society of Materials Science, Japan, 59 (2010) 840-845. [6] T. Ogata, T. Sakai, M. Yaguchi, Damage assessment method of P91 steel welded tube under internal pressure creep based on void growth simulation. International Journal of Pressure Vessels and Piping, 87 (2010) 611-616. [7] H. Hongo, M. Tabuchi, T. Watanabe, Type IV creep damage behavior in Gr.91 steel welded joints. Metallurgical and Materials Transactions A, 43A (2012) 1163-1173. [8] M. Tabuchi, H. Hongo, Evaluation of long-term creep damage in high Cr ferritic steel welds. Materials at High Temperatures, 28 (2011) 172-180. [9] M. Tabuchi, Y. Takahashi, Evaluation of creep strength reduction factors for welded joints of modified 9Cr-1Mo steel. Transactions of the ASME, Journal of Pressure Vessel Technology, 134 (2012) 031401-1-6. [10] Y. Takahashi, M. Tabuchi, Evaluation of creep strength reduction factors for welded joints of Grade 122 steel. Transactions of the ASME, Journal of Pressure Vessel Technology, 133 (2011) 021401-1-5.

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