Characterisation of residual stress relaxation in fatigue loaded welded joints by X-ray diffraction and Barkhausen noise method

被引:19
|
作者
Lachmann, C [1 ]
Nitschke-Pagel, T [1 ]
Wohlfahrt, H [1 ]
机构
[1] Tech Univ Braunschweig, Welding Inst, D-3300 Braunschweig, Germany
关键词
Barkhausen noise; fatigue; residual stress relaxation; weld; X-ray diffraction;
D O I
10.4028/www.scientific.net/MSF.347-349.374
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The fatigue behaviour of welded joints is dependent on the weld geometry, its microstructure, the cyclic material properties of the different weld zones and the magnitude and relaxation behaviour of residual stresses. The degree of plastic deformation and the quasi-static residual stress relaxation in the weld was simulated by a FEM-model and coincided well with the residual stresses measured by X-ray diffraction. Under fatigue loading, an advancing residual stress relaxation in the weld is accompanied by a characteristic change in the micromagnetic parameters resulting from the Barkhausen noise measurements. Using a multiparameter regression approach, the problem of ambiguity of micromagnetic parameters can be solved and the micromagnetic testing method can be used for the residual stress determination in welded joints. The results indicate that a characteristic change of the residual stresses and in the behaviour of the micromagnetic parameters shortly before failure of the welded joint can be used as an indicator of severe fatigue damage within the weld.
引用
收藏
页码:374 / 379
页数:6
相关论文
共 50 条
  • [31] Residual stress distribution as a function of depth in graphite/copper brazing joints via X-ray diffraction
    Chun Li
    Xiaoqing Si
    Jian Cao
    Junlei Qi
    Zhibo Dong
    Jicai Feng
    JournalofMaterialsScience&Technology, 2019, 35 (11) : 2470 - 2476
  • [32] Residual stress distribution as a function of depth in graphite/copper brazing joints via X-ray diffraction
    Li, Chun
    Si, Xiaoqing
    Cao, Jian
    Qi, Junlei
    Dong, Zhibo
    Feng, Jicai
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2019, 35 (11) : 2470 - 2476
  • [33] Effect of Peak Positioning Method on Accuracy of X-Ray Diffraction Residual Stress Measurement
    Sedighi, M.
    Nazemnezhad, R.
    EXPERIMENTAL TECHNIQUES, 2016, 40 (01) : 295 - 302
  • [34] Effect of Peak Positioning Method on Accuracy of X-Ray Diffraction Residual Stress Measurement
    M. Sedighi
    R. Nazemnezhad
    Experimental Techniques, 2016, 40 : 295 - 302
  • [35] Measurement of residual stress in single-crystal SiC by X-ray diffraction method
    Deng, Ya
    Zhang, Yumin
    Zhou, Yufeng
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2022, 54 (01): : 147 - 153
  • [36] Residual stress determination by the layer removal and X-ray diffraction measurement correction method
    Dlhy, Pavol
    Poduska, Jan
    Pokorny, Pavel
    Jambor, Michal
    Nahlik, Lubos
    Hutar, Pavel
    METHODSX, 2022, 9
  • [37] Residual Stress Evaluation of Railway Wheels by X-ray Diffraction and Finite Element Method
    Takahashi, Shunichi
    Kato, Takanori
    Suzuki, Hiroshi
    Sasaki, Toshihiko
    THERMEC 2009 SUPPLEMENT: 6TH INTERNATIONAL CONFERENCE ON PROCESSING & MANUFACTURING OF ADVANCED MATERIALS, 2010, 89-91 : 545 - +
  • [38] Review of residual stress determination and exploitation techniques using x-ray diffraction method
    Belassel, M.
    Pineault, J.
    Brauss, M. E.
    RESIDUAL STRESSES VII, 2006, 524-525 : 229 - 234
  • [39] Residual stress determination in microsystems using X-ray diffraction
    Kämpfe, B
    Kämpfe, A
    Auerswald, E
    Kassem, ME
    MICRO MATERIALS, PROCEEDINGS, 2000, : 695 - 699
  • [40] RESIDUAL-STRESS ANALYSIS USING X-RAY DIFFRACTION
    BAUCUM, WE
    EXPERIMENTAL MECHANICS, 1971, 11 (05) : N36 - &