METHODS FOR DETERMINING CREEP DAMAGE AND CREEP-FATIGUE CRACK GROWTH INCUBATION IN AUSTENITIC STAINLESS STEEL

被引:0
作者
Webster, George A. [1 ]
Dean, David W. [1 ]
Spindler, Michael W. [1 ]
Smith, N. Godfrey [1 ]
机构
[1] Univ London Imperial Coll Sci Technol & Med, Dept Mech Engn, London SW7 2BX, England
来源
PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, VOL 6, PTS A AND B | 2010年
关键词
STRESS; DUCTILITY; VOIDS;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Most design and safety assessment procedures for estimating the accumulation of creep damage under plant operating conditions adopt either stress-based time (life) fraction or strain-based ductility exhaustion criteria for making component lifetime predictions. The UK Technical Advisory Group on Structural Integrity of Nuclear Plant (TAGSI) has reviewed new stress modified ductility exhaustion methods proposed for calculating the creep contribution to damage in components that are subjected to creep-fatigue loading. The new procedures have been found to give more reliable and less pessimistic predictions of creep damage for the isothermal laboratory data analysed than current methods in the British Energy R5 procedure. TAGSI has also reviewed the ad method in R5 for determining incubation periods for pre-existing and postulated defects and considers that it can be used with both stress (using the life fraction rule) and strain (using ductility exhaustion) based approaches. This paper gives the background to the reviews by TAGSI of these creep damage approaches and discusses the implications for data requirements and assessment methods.
引用
收藏
页码:671 / 683
页数:13
相关论文
共 50 条
  • [1] Probabilistic assessment of creep-fatigue crack propagation in austenitic stainless steel cracked plates
    Vojdani, A.
    Farrahi, G. H.
    Mehmanparast, A.
    Wang, B.
    ENGINEERING FRACTURE MECHANICS, 2018, 200 : 50 - 63
  • [2] Creep, fatigue, and creep-fatigue crack growth behaviours of P92 steel at 600 °C
    Alang, N. A.
    Nikbin, K.
    STRENGTH FRACTURE AND COMPLEXITY, 2022, 15 (01) : 29 - 45
  • [3] Creep-fatigue crack growth rate assessment using ductility damage model
    Shlyannikov, V.
    Tumanov, A.
    Boychenko, N.
    INTERNATIONAL JOURNAL OF FATIGUE, 2018, 116 : 448 - 461
  • [4] Creep-fatigue properties and life prediction of TP321 austenitic stainless steel at high temperature
    Zhen, Chong
    Zhang, Chenwei
    Chen, Shanghao
    Wang, Hongchang
    Li, Ling
    Lin, Junsen
    Luo, Lijia
    Bao, Shiyi
    Wang, Xujia
    JOURNAL OF MATERIALS SCIENCE, 2025, : 5603 - 5622
  • [5] Simulations of creep crack growth in 316 stainless steel using a novel creep-damage model
    Wen, Jian-Feng
    Tu, Shan-Tung
    Gao, Xin-Lin
    Reddy, J. N.
    ENGINEERING FRACTURE MECHANICS, 2013, 98 : 169 - 184
  • [6] Creep-fatigue crack growth rate prediction based on fracture damage zone models
    Shlyannikov, V. N.
    ENGINEERING FRACTURE MECHANICS, 2019, 214 : 449 - 463
  • [7] Influence of prior creep-fatigue exposure on remnant tensile and creep properties of AISI 321 austenite stainless steel
    Chen, Huitao
    Li, Wei
    Chen, Wei
    Chen, Jian
    Zhang, Shengde
    INTERNATIONAL JOURNAL OF FATIGUE, 2022, 159
  • [8] Improved creep-fatigue and remnant tensile/creep properties of 321 stainless steel by self-healing coating
    Li, Wei
    Qin, Houjun
    Zhu, Shunpeng
    Bo, Guowei
    Sun, Tao
    Jiang, Dapeng
    Chen, Hui
    Peng, Xulong
    Chen, Jian
    He, Jianjun
    Ni, Song
    Xiao, Canjuan
    Zhang, Shengde
    Chen, Anqi
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2023, 46 (11) : 4406 - 4422
  • [9] Damage mechanics based predictions of creep crack growth in 316 stainless steel
    Hyde, C. J.
    Hyde, T. H.
    Sun, W.
    Becker, A. A.
    ENGINEERING FRACTURE MECHANICS, 2010, 77 (12) : 2385 - 2402
  • [10] Size effect in creep-fatigue crack growth interaction in P2M steel
    Shlyannikov, Valery
    Kosov, Dmitry
    Fedorenkov, Dmitry
    Zhang, Xian-Chen
    Tu, Shan-Tung
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2021, 44 (12) : 3301 - 3319