Continuous observation of cavity growth and coalescence by creep-fatigue tests in SEM

被引:11
|
作者
Arai, M
Ogata, T
Nitta, A
机构
[1] Material Science Department, Ctrl. Res. Inst. Elec. Pwr. Indust., Komae, Tokyo 201
关键词
scanning electron microscope; creep; creep-fatigue; cavity growth model; damage mechanisms;
D O I
10.1299/jsmea1993.39.3_382
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Structural components operating at high temperatures in power plants are subjected to interaction of thermal fatigue and creep which results in creep-fatigue damage. In evaluating the life of those components, it is important to understand microscopic damage evolution under creep-fatigue conditions, In this study, static creep and creep-fatigue tests with tensile hold-time were conducted on a SUS 304 stainless steel by using a high-temperature fatigue testing machine combined with a scanning electron microscope (SEM), and cavity growth and coalescence behaviors on surface grain boundaries were observed continuously by the SEM. Quantitative analysis of creep cavity growth based on the observations was made for comparison with theoretical growth models. As a result, it was found that cavities nucleate at random and grow preferentially on grain boundaries in a direction almost normal to the stress axis. Under creep condition, the cavities grew monotonously on grain boundaries while remaining an elliptical shape, On the other hand, under creep-fatigue conditions, the cavities grew due to the effect of the local strain distribution around the grain boundary due to cyclic loading and microcracks of one grain-boundary length were formed hy coalescence of the cavities. Also, cavity nucleation and growth rates under the creep-fatigue condition were more rapid than those under the static creep condition and the constrained cavity growth model coincided well with the experimental data for creep.
引用
收藏
页码:382 / 388
页数:7
相关论文
共 50 条
  • [11] A new creep-fatigue crack growth model and a correlation of the creep-fatigue crack growth rate with unified constraint parameter
    Lu, Rong-Sheng
    Tan, Jian-Ping
    Yang, Jie
    Wang, Ji
    Shlyannikov, Valery
    Wang, Run-Zi
    Zhang, Xian-Cheng
    Tu, Shan -Tung
    INTERNATIONAL JOURNAL OF FATIGUE, 2023, 166
  • [12] A novel creep-fatigue interaction damage model with the stress effect to simulate the creep-fatigue crack growth behavior
    Xu, Lianyong
    Zhao, Lei
    Gao, Zhifang
    Han, Yongdian
    INTERNATIONAL JOURNAL OF MECHANICAL SCIENCES, 2017, 130 : 143 - 153
  • [13] CREEP-FATIGUE LIFE PREDICTION IN TERMS OF NUCLEATION AND GROWTH OF FATIGUE CRACK AND CREEP CAVITIES
    NAM, SW
    HONG, JW
    RIE, KT
    METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1988, 19 (01): : 121 - 127
  • [14] Component Assessment Data Requirements from Creep-Fatigue Tests
    Holdsworth, S. R.
    CREEP-FATIGUE INTERACTIONS: TEST METHODS AND MODELS, 2011, 1539 : 3 - 22
  • [15] A creep stress intensity factor approach to creep-fatigue crack growth
    Shlyannikov, V. N.
    Tumanov, A. V.
    Boychenko, N. V.
    ENGINEERING FRACTURE MECHANICS, 2015, 142 : 201 - 219
  • [16] Some observations on fatigue and creep-fatigue tests on metallic bellows in sodium.
    Balachander, K
    Rajan, KK
    Ramalingam, P
    Vijayashree, R
    Gupta, SK
    Kale, RD
    TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2000, 53 (03): : 421 - 425
  • [17] A new creep-fatigue interaction damage model and CDM-XFEM framework for creep-fatigue crack growth simulations
    Pandey, V. B.
    Singh, I. V.
    Mishra, B. K.
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2023, 124
  • [18] Modelling the effect of creep-fatigue interaction on crack growth
    Grover, PS
    Saxena, A
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 1999, 22 (02) : 111 - 122
  • [19] Creep-Fatigue Crack Growth in Power Plant Steels
    Holdsworth, Stuart
    TRANSACTIONS OF THE INDIAN INSTITUTE OF METALS, 2016, 69 (02) : 353 - 358
  • [20] Creep-Fatigue Crack Growth in Power Plant Steels
    Stuart Holdsworth
    Transactions of the Indian Institute of Metals, 2016, 69 : 353 - 358