A measurement method of residual stress in quenched steel by neutron diffracation

被引:4
|
作者
Ju, DY
Mukai, R
Minakawa, N
Morii, Y
Moriai, A
机构
[1] Saitama Inst Technol, Grad Sch, Dept Mat Sci & Engn, Okabe, Saitama 3690293, Japan
[2] JSNS, Adv Sci Res Ctr, Tokai, Ibaraki 3191195, Japan
来源
ADVANCES IN NONDESTRUCTIVE EVALUATION, PT 1-3 | 2004年 / 270-273卷
关键词
neutron diffraction; residual stresses; quenching; phase transformation; gradient distribution; martensite; carbon steel; finite element analysis;
D O I
10.4028/www.scientific.net/KEM.270-273.139
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
An experimental methodology was developed for identification of residual stresses inside quenched steel by neutron diffraction considering gradient distribution of martensite phases. A hybrid method is used by which the residual stress in the quenched steel was measured with neutron diffraction integrated with numerical simulation results of microstructure and phase distribution. A coupled finite element analysis based on metallo-thermo-mechanical theory was carried out to predict the microstructure due to phase transformation during quenching process. The non-strain lattice spacing and elastic modulus were measured with rotating specimen method in tensile test. Then, residual stresses in the (110) plane are measured using the cylinder specimens of quenched S45C and SCr420 steel by the neutron diffraction method. Finally the measured results of XRD, neutron diffraction as well as the calculated values were compared and discussed.
引用
收藏
页码:139 / 146
页数:8
相关论文
共 50 条
  • [41] Residual stress measurements of structural components by neutron diffraction and proposal of measurement standard
    Hayashi, M
    Okido, S
    Morii, Y
    Minakawa, N
    Root, JH
    THERMEC'2003, PTS 1-5, 2003, 426-4 : 3969 - 3974
  • [42] The through-the-thickness measurement of residual stress in a thick welded steel compact tension specimen by the contour method
    Richter-Trummer, V.
    de Castro, P. M. S. T.
    JOURNAL OF STRAIN ANALYSIS FOR ENGINEERING DESIGN, 2011, 46 (04): : 315 - 322
  • [43] Evaluation of a self-equilibrium cutting strategy for the contour method of residual stress measurement
    Muransky, O.
    Hamelin, C. J.
    Hosseinzadeh, F.
    Prime, M. B.
    INTERNATIONAL JOURNAL OF PRESSURE VESSELS AND PIPING, 2018, 164 : 22 - 31
  • [44] Groove grinding method for near the surface residual stress measurement
    Vaclavik, Jaroslav
    Hejman, Marek
    Weinberg, Otakar
    EXPERIMENTAL STRESS ANALYSIS (EAN 2019), 2019, : 540 - 543
  • [45] DEVELOPMENT OF WELD RESIDUAL STRESS MEASUREMENT METHOD FOR PRIMED STEELS
    Yang, Y. P.
    Dull, R.
    Huang, T. D.
    Rucker, H.
    Harbison, M.
    Scholler, S.
    Zhang, W.
    Semple, J.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, 2017, VOL 6B, 2017,
  • [46] Plasticity Effects in Residual Stress Measurement by the Hole Drilling Method
    Vangi, D.
    Ermini, M.
    STRAIN, 2000, 36 (02) : 55 - 59
  • [47] Numerical analysis of triaxial residual stresses in quenched 316H stainless steel
    Andrade-Campos, A.
    Teixeira-Dias, F.
    DIFFUSION IN SOLIDS AND LIQUIDS: HEAT TRANSFER - MICROSTRUCTURE & PROPERTIES, 2007, 553 : 7 - +
  • [48] Investigation of Residual Stress in Laser Formed Mild Steel Plates Using Neutron Diffraction
    Knupfer, Stefan
    Paradowska, Anna M.
    Kirstein, Oliver
    Moore, Andrew
    MECHANICAL STRESS EVALUATION BY NEUTRONS AND SYNCHROTRON RADIATION, 2010, 652 : 123 - +
  • [49] Residual stress investigations of a ferritic steel welded plate by a nondestructive neutron diffraction technique
    Taran, YV
    Albertini, G
    Bruno, G
    Cernushi, F
    Rustichelli, F
    INTERNATIONAL WORKSHOP ON NONDESTRUCTIVE TESTING AND COMPUTER SIMULATIONS IN SCIENCE AND ENGINEERING, 1999, 3687 : 350 - 359
  • [50] Residual stress distribution in friction stir welded ODS steel measured by neutron diffraction
    Dawson, H.
    Serrano, M.
    Cater, S.
    Wady, P.
    Pirling, T.
    Jimenez-Melero, E.
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2017, 246 : 305 - 312