Development of creep strain equations for Ka-SUS410J3 (Grade 122)

被引:0
作者
Takahashi, Yukio [1 ]
机构
[1] Central Res. Inst. of Electric Power Industry, Nagasaka, Yokosuka
关键词
Creep deformation; High temperature; Ka-SUS410J3; Primary creep; Tertiary creep;
D O I
10.2472/jsms.63.338
中图分类号
学科分类号
摘要
Evaluation of the failure under creep deformation is essential in design and life management of high-temperature components constituting power generation plants. Deformation model as well as life evaluation rule plays an important role in such a evaluation and their accuracy needs to be qualified. In order to estimate variation of stress distribution with time due to creep deformation, creep strain equations are required to be used and their accuracy is important for the reliability of the assessment of creep damage. Creep strain equations for ka-SUS410J3 (ASME Grade 122) steel which is widely used in ultra-super critical thermal power plants were developed in this study. Expressions for the primary and the tertiary creep deformations were developed as well as those for the secondary creep deformation with special attentions to the difference between short-term and long-term behavior as well as dependency of the starting point of the tertiary creep phase on temperature and rupture time. © 2014 The Society of Materials Science, Japan.
引用
收藏
页码:338 / 344
页数:6
相关论文
共 10 条
[1]  
Evans R.W., Wilshire B., Creep of Metals and Alloys, (1985)
[2]  
Maruyama K., Harada C., Oikawa H., A strain-time equation applicable up to tertiary creep stage, Journal of the Society of Materials Science, Japan, 34, 386, pp. 1289-1295, (1985)
[3]  
Maruyama K., Nonaka I., Sawada K., Sato H., Koike J., Umaki H., Improvement of omega method for creep life prediction, ISIJ International, 37, 4, pp. 419-423, (1997)
[4]  
Codes for Nuclear Power Generation Facilities -Rules on Design and Construction for Nuclear Power Plants- Part II : Fast Reactors, (2005)
[5]  
Design and Construction Rules for Mechanical Components of FBR Nuclear Islands, RCC-MR, (2007)
[6]  
Takahashi Y., Shibamoto H., Development of inelastic analysis method for low-carbon nitrogen-added 316 stainless steel, Nuclear Engineering and Design, 238, pp. 322-335, (2008)
[7]  
Takahashi Y., Creep rupture behavior of modified 9cr- 1mo steel under multiaxial stress and its modeling, Journal of the Society of Materials Science, Japan, 58, 2, pp. 115-121, (2009)
[8]  
Kimura K., Creep strength assessment and review of allowable tensile stress of creep strength enhanced ferritic steels in japan, Proceedings of 2006 ASME Pressure Vessels and Piping Division Conference, (2006)
[9]  
Oikawa H., Iijima Y., Diffusion behavior of creepresistant steels, Creep-Resistant Steels, (2009)
[10]  
Takahashi Y., Comparison of notched bar creep behavior of various alloys, PVP2010-26096, 2010, Proceedings of the ASME 2010 Pressure Vessels & Piping Division/K-PVP Conference, (2010)