Microstructural and Finite Element Analysis of Creep Failure in Dissimilar Weldment Between 9Cr and 2.25Cr Heat-Resistant Steels

被引:3
|
作者
Sung, Hyun Je [1 ]
Moon, Ji Hyun [2 ]
Jang, Min Ji [2 ]
Kim, Hyoung Seop [2 ]
Kim, Sung-Joon [3 ]
机构
[1] POSCO, Tech Res Labs, Pohang 37859, South Korea
[2] POSTECH, Dept Mat Sci & Engn, Pohang 37673, South Korea
[3] POSTECH, Grad Inst Ferrous Technol, Pohang 37673, South Korea
关键词
CRACKING;
D O I
10.1007/s11661-018-4859-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Microstructural analysis and the creep failure mechanism of dissimilar weldment between ASTM A213 T92 (9Cr1.5W0.5MoVNbTi) and T22 (2.25Cr1Mo) heat-resistant steels are reported. The low-Cr part that has high carbon activity shows a depletion of C during postweld heat treatment. In particular, the soft carbon-depleted zone (CDZ) with the lowest hardness is surrounded by strong weld metal (WM) and the T22 heat-affected zone (HAZ). Load-displacement curves obtained by nanoindentation experiments are used to extract true stress-strain curves of the WM, the CDZ, and the T22 HAZ by using finite element methods (FEMs). Because of the mechanical properties of each region, the soft CDZ confined between harder regions is exposed to multiaxial stress. Therefore, creep voids actively form and coalesce in this CDZ and lead to macroscopic brittle fracture. (C) The Minerals, Metals & Materials Society and ASM International 2018
引用
收藏
页码:5323 / 5332
页数:10
相关论文
共 50 条
  • [31] Electrochemical Characterization Method of Laves Phase in 9Cr Martensitic Heat-Resistant Steel and Creep Life Prediction
    Yuan, Sui
    Li, Ji
    Guo, Qi
    Tang, Liying
    Xu, Jian
    Zhou, Rongcan
    Zhang, Hongjun
    CRYSTALS, 2023, 13 (11)
  • [32] Dissimilar metal welds between 9Cr creep strength enhanced ferritic steel and advanced stainless steels-creep rupture test results and microstructural investigations
    Huysmans, S.
    Vekeman, J.
    Hautfenne, C.
    WELDING IN THE WORLD, 2017, 61 (02) : 341 - 350
  • [33] Creep Rupture Behavior in Dissimilar Weldment between FB2 and 30Cr1Mo1V Heat-Resistant Steel
    Xiong, Jiankun
    Yang, Jianping
    Zhao, Haiyan
    Yang, Lin
    Guo, Yang
    Nie, Fuheng
    Xu, Dexing
    Yu, Liping
    Cao, Fenghong
    INTERNATIONAL JOURNAL OF PHOTOENERGY, 2021, 2021
  • [34] Creep rupture strength of heat affected zone for 9Cr ferritic heat resisting steels
    Otoguro, Y
    Matsubara, M
    Itoh, I
    Nakazawa, T
    NUCLEAR ENGINEERING AND DESIGN, 2000, 196 (01) : 51 - 61
  • [35] Microstructural evolution and creep-rupture life estimation of high-Cr martensitic heat-resistant steels
    Lee, Kyu-Ho
    Suh, Jin-Yoo
    Hong, Sung-Min
    Huh, Joo-Youl
    Jung, Woo-Sang
    MATERIALS CHARACTERIZATION, 2015, 106 : 266 - 272
  • [36] On Creep-Rupture Property Assessment for 9-12% Cr Ferritic Heat-Resistant Steels
    Peng, Z. F.
    Dang, Y. Y.
    Peng, F. F.
    ADVANCES IN MATERIALS TECHNOLOGY FOR FOSSIL POWER PLANTS: PROCEEDINGS FROM THE SIXTH INTERNATIONAL CONFERENCE, 2010, 2011, : 705 - 714
  • [37] CREEP-BEHAVIOR OF HEAT-RESISTANT STEELS .2. CREEP EQUATIONS FOR STEELS 2.25 CR-1 MO AND 12 CR-1 MO-0.3 V
    KLOOS, KH
    GRANACHER, J
    OEHL, M
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 1993, 24 (09) : 331 - 338
  • [38] Electrodes for manual arc welding of heat-resistant steels with 9 % Cr
    Zakharov, L.S.
    Gavrik, A.R.
    Avtomaticheskaya Svarka, 2005, (05): : 61 - 63
  • [39] Study of Dissimilar Header Welding Between 2.25Cr–1Mo Steel and 9Cr–1Mo Steel with 9018 B9 Electrode Under Various Conditions of Post Weld Heat Treatment
    Abdur Rahman Sultan
    R. Ravibharath
    R. Narayanasamy
    Transactions of the Indian Institute of Metals, 2017, 70 : 2079 - 2092
  • [40] Creep rupture behavior and microstructural evolution of modified 9Cr-1Mo heat-resistant steel
    Ren, Fa-cai
    Wang, He
    Tang, Xiao-ying
    Chen, Fei
    JOURNAL OF IRON AND STEEL RESEARCH INTERNATIONAL, 2018, 25 (12) : 1303 - 1310