High-temperature low cycle fatigue, creep-fatigue and thermomechanical fatigue of steels and their welds

被引:98
|
作者
Mannan, SL [1 ]
Valsan, M [1 ]
机构
[1] IGCAR, Met & Mat Grp, Tamil Nadu 603102, India
关键词
low cycle fatigue; thermomechanical fatigue; 316L(N) steel; modified 9Cr-1Mo steel; welds;
D O I
10.1016/j.ijmecsci.2005.08.004
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
High-temperature low cycle fatigue (LCF) is influenced by various time-dependent processes such as creep, oxidation, phase transformations and dynamic strain ageing (DSA) depending on test conditions of strain rate and temperature. In this paper, the detrimental effects of DSA and oxidation in high-temperature LCF are discussed with reference to extensive studies on 316L(N) stainless steel and modified 9Cr-1Mo steel. DSA has been found to enhance the stress response and reduce ductility. It localizes fatigue deformation, enhances fatigue cracking and reduces fatigue life. High-temperature oxidation accelerates transgranular and intergranular fatigue cracking in modified 9Cr-1Mo steel and during long hold time tests in austenitic stainless steel. In welds, microstructural features such as presence of course grains in the HAZ and formation of brittle phases due to transformation of delta ferrite during testing influence crack initiation and propagation and fatigue life. Thermomechanical fatigue (TMF) studies are suggested as more closer to the actual service conditions. In 316L(N) stainless steel, TMF lives under out-of-phase cycling are found to be lower than those under in-phase conditions in the low-temperature regimes, while the converse holds good when the upper temperature encompassed the creep-dominant regime. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:160 / 175
页数:16
相关论文
共 50 条
  • [1] High temperature low cycle fatigue of steels and their welds
    Mannan, SL
    Valsan, M
    [J]. ADVANCES IN ENGINEERING PLASTICITY AND ITS APPLICATIONS, PTS 1 AND 2, 2004, 274-276 : 57 - 64
  • [2] Low Cycle Fatigue and Creep-Fatigue Behavior of Alloy 617 at High Temperature
    Cabet, Celine
    Carroll, Laura
    Wright, Richard
    [J]. JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2013, 135 (06):
  • [3] Experimental and Numerical Investigation of High-Temperature Low-Cycle Fatigue and Creep-Fatigue Life of Bellows
    Krovvidi, S. C. S. P. Kumar
    Goyal, Sunil
    Bhaduri, A. K.
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2021, 30 (04) : 2742 - 2750
  • [4] Experimental and Numerical Investigation of High-Temperature Low-Cycle Fatigue and Creep-Fatigue Life of Bellows
    S. C. S. P. Kumar Krovvidi
    Sunil Goyal
    A. K. Bhaduri
    [J]. Journal of Materials Engineering and Performance, 2021, 30 : 2742 - 2750
  • [5] Extended constant life diagrams for low cycle fatigue and creep-fatigue assessments of high-temperature structures
    Ma, Zhiyuan
    Fu, Zhuojia
    Chen, Haofeng
    Wang, Xiaoxiao
    Barbera, Daniele
    [J]. ENGINEERING STRUCTURES, 2024, 308
  • [6] INTERACTION OF HIGH CYCLE FATIGUE WITH HIGH-TEMPERATURE CREEP IN STEELS
    LUKAS, P
    KUNZ, L
    SKLENICKA, V
    [J]. KOVOVE MATERIALY-METALLIC MATERIALS, 1991, 29 (01): : 64 - 77
  • [7] Creep-fatigue properties of high temperature turbine steels
    Holdsworth, SR
    [J]. MATERIALS AT HIGH TEMPERATURES, 2001, 18 (04) : 261 - 265
  • [9] INTERGRANULAR CAVITATION IN COPPER UNDER HIGH-TEMPERATURE CREEP, FATIGUE AND CREEP-FATIGUE CONDITIONS
    SKLENICKA, V
    LUKAS, P
    KUNZ, L
    [J]. KOVOVE MATERIALY-METALLIC MATERIALS, 1992, 30 (03): : 262 - 271
  • [10] INTERGRANULAR FRACTURE IN COPPER UNDER HIGH-TEMPERATURE CREEP, FATIGUE AND CREEP-FATIGUE CONDITIONS
    SKLENICKA, V
    LUKAS, P
    KUNZ, L
    [J]. SCRIPTA METALLURGICA ET MATERIALIA, 1990, 24 (09): : 1795 - 1800