Prediction of charpy absorbed energy of steel for welded structure in ductile-to-brittle fracture transition temperature range

被引:0
|
作者
Takashima Y. [1 ]
Minami F. [1 ]
机构
[1] Joining and Welding Research Institute, Osaka University
关键词
Brittle fracture; Charpy impact test; Statistical scatter; Structural steel; Toughness;
D O I
10.2207/QJJWS.38.103S
中图分类号
学科分类号
摘要
Charpy impact tests are widely used for evaluating the notch toughness of materials and welded joints. Generally, the test results show a large statistical scatter in the ductile-to-brittle transition temperature range. Recent research found that the statistical distribution of the Charpy absorbed energy was characterized by a two-parameter Weibull distribution with a shape parameter of 2 under pure brittle fracture. In this study, a probabilistic model for evaluating notch toughness was applied. The Charpy impact test was conducted in the ductile-brittle transition temperature range, and the results showed a large statistical scatter. The Charpy absorbed energies at 1%, 50%, and 99% fracture probability estimated by the maximum likelihood method with the two-parameter Weibull distribution and a shape parameter of 2 showed good agreement with the experimental data for pure brittle fracture. The temperature dependence of the scale parameter for the absorbed energy can be expressed as an exponential function. The absorbed energy predicted in the ductile-brittle transition temperature range by the probabilistic model showed good agreement with the experimental data under pure brittle fracture. © 2020 Japan Welding Society. All rights reserved.
引用
收藏
页码:103S / 107S
页数:4
相关论文
共 50 条
  • [21] Algorithms to Estimate the Ductile to Brittle Transition Temperature, Upper Shelf Energy, and Their Uncertainties for Steel Using Charpy V-Notch Shear Area and Absorbed Energy Data
    Switzner, Nathaniel T.
    Anderson, Joel
    Ahmed, Lanya Ali
    Rosenfeld, Michael
    Veloo, Peter
    METALS, 2023, 13 (05)
  • [22] Ductile-to-Brittle transition in 〈111〉 hadfield steel single crystals
    Astafurova E.G.
    Chumlyakov Y.I.
    Russian Metallurgy (Metally), 2010, 2010 (10) : 857 - 861
  • [23] Statistical Distribution Model of Charpy Absorbed Energy in Transition Temperature Range for Reactor Pressure Vessel Steel
    Miura, Naoki
    Shinko, Tomoki
    JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2023, 145 (05):
  • [24] Experimental and numerical investigations on ductile-to-brittle transition in a carbon steel
    Yan, C
    Mai, YW
    Wu, SX
    ADVANCES IN FRACTURE RESEARCH, VOLS 1-6, 1997, : 189 - 196
  • [25] MACROFRACTOGRAPHIC AND MICROFRACTOGRAPHIC FEATURES OF DISPERSED IMPACT FAILURE OF 45 STEEL IN THE DUCTILE-TO-BRITTLE TRANSITION RANGE
    BOTVINA, LR
    KLEVTSOV, GV
    METAL SCIENCE AND HEAT TREATMENT, 1985, 27 (1-2) : 118 - 121
  • [26] Prediction of cleavage fracture in the ductile-to-brittle transition region of pressure vessel steels: A probabilistic model
    Gao, Xiaosheng
    Zhang, Guihua
    Srivatsan, T. S.
    FRACTURE AND DAMAGE MECHANICS V, PTS 1 AND 2, 2006, 324-325 : 283 - +
  • [27] Prediction of fracture toughness in ductile-to-brittle transition region using combined CDM and Beremin models
    Moattari, Mastaneh
    Sattari-Far, Iradj
    Persechino, Italo
    Bonora, Nicola
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2016, 657 : 161 - 172
  • [28] NON FRACTURE PREDICTION OF A C-MN WELD JOINT IN BRITTLE TO DUCTILE FRACTURE TRANSITION TEMPERATURE RANGE
    Chapuliot, S.
    Marie, S.
    N'Guyen, T. H.
    Niclaeys, C.
    Degalleix, S.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE 2010, VOL 6, PTS A AND B, 2010, : 519 - 526
  • [29] The ductile-to-brittle transition and the temperature and temporal stability of amorphous alloys
    Glezer A.M.
    Blinova E.N.
    Permyakova I.E.
    Cheretaeva A.O.
    Bulletin of the Russian Academy of Sciences: Physics, 2015, 79 (9) : 1141 - 1145
  • [30] Effect of temperature on ductile-to-brittle transition in diamond cutting of silicon
    He, Wenbin
    Liu, Changlin
    Xu, Guoqing
    Zhang, Jianguo
    Xiao, Junfeng
    Chen, Xiao
    Xu, Jianfeng
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2021, 116 (11-12): : 3447 - 3462