Stress-Induced Self-Magnetic Flux Leakage at Stress Concentration Zone

被引:14
|
作者
Kashefi, Mehrdad [1 ]
Clapham, Lynann [2 ]
Krause, Thomas W. [3 ]
Underhill, P. Ross [3 ]
Krause, Anthony K. [2 ]
机构
[1] Ferdowsi Univ Mashhad, Dept Mat Sci & Engn, Fac Engn, Mashhad 9177948974, Razavi Khorasan, Iran
[2] Queens Univ, Dept Phys Engn Phys & Astron, Kingston, ON K7L 3N6, Canada
[3] Royal Mil Coll Canada, Dept Phys & Space Sci, Kingston, ON K7K 7B4, Canada
关键词
Magnetic object (MO) model; metal magnetic memory (MMM); self-magnetic flux leakage (SMFL); stress concentration zone (SCZ); PLASTIC-DEFORMATION; MEMORY SIGNALS; EASY-AXIS; STEEL; FIELD; IMPACT;
D O I
10.1109/TMAG.2021.3102822
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The residual magnetization technique is a new method for detecting stress concentration zones (SCZs) in ferromagnetic materials. Local rising of stress at SCZs, such as cracks, results in the development of local elastic and plastic deformation. The two deformation regimes produce different magnetic characteristics, which have competing effects on self-magnetic-flux-leakage signals. In the present research, samples with three different groove depths were subjected to different tensile stress levels. A surface scanning system was used to record the variation of magnetic signals at grooves of varying depth under steadily increasing stress conditions. The results show that elastic deformation increases peak-to-peak values of normal magnetic components and a maximum gradient of the normal magnetic component in the direction of applied stress, while the development of local plastic deformation reduces signal intensity at groove locations. The magnetic object (MO) model is used to explain the mechanism for excess flux leakage field at SCZs as being due to the conversion of magnetoelastic energy-introduced by the application of tensile stress up to the local yield point-into magnetostatic surface poles that are sensed as an increase in the normal component of leakage.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] Stress-Dependent Magnetic Flux Leakage: Finite Element Modelling Simulations Versus Experiments
    Wang, Yujue
    Melikhov, Yevgen
    Meydan, Turgut
    Yang, Zengchong
    Wu, Donghang
    Wu, Bin
    He, Cunfu
    Liu, Xiucheng
    JOURNAL OF NONDESTRUCTIVE EVALUATION, 2020, 39 (01)
  • [22] Characterising the stress ratio effect for fatigue crack propagation parameters of SAE 1045 steel based on magnetic flux leakage
    Arifin, A.
    Abdullah, S.
    Ariffin, A. K.
    Jamaludin, N.
    Singh, S. S. K.
    THEORETICAL AND APPLIED FRACTURE MECHANICS, 2022, 121
  • [23] Detection of uniaxial fatigue stress under magnetic flux leakage signals using Morlet wavelet
    Firdaus, S. M.
    Arifin, A.
    Abdullah, S.
    Singh, S. S. K.
    Nor, N. Md
    FRATTURA ED INTEGRITA STRUTTURALE-FRACTURE AND STRUCTURAL INTEGRITY, 2022, 16 (61): : 254 - 265
  • [24] Stress-Induced Phosphaturia in Weaned Piglets
    Habich, Malgorzata
    Pawlinski, Bartosz
    Sady, Maria
    Siewruk, Katarzyna
    Zielenkiewicz, Piotr
    Gajewski, Zdzislaw
    Szczesny, Pawel
    ANIMALS, 2020, 10 (12): : 1 - 8
  • [25] Variation of stress-induced magnetic signals during tensile testing of ferromagnetic steels
    Dong Lihong
    Xu Binshi
    Dong Shiyun
    Chen Qunzhi
    Wang Dan
    NDT & E INTERNATIONAL, 2008, 41 (03) : 184 - 189
  • [26] Large stress-induced anisotropy in soft magnetic films for synthetic spin valves
    Chang, H. W.
    Yuan, F. T.
    Lin, D. Y.
    Tseng, D. H.
    Chang, W. C.
    Chen, Y. S.
    Lin, J. G.
    APPLIED PHYSICS LETTERS, 2021, 119 (24)
  • [27] Stress-Induced Magnetic Anisotropy Enabling Engineering of Magnetic Softness and GMI Effect of Amorphous Microwires
    Corte-Leon, Paula
    Talaat, Ahmed
    Zhukova, Valentina
    Ipatov, Mihail
    Maria Blanco, Juan
    Gonzalez, Julian
    Zhukov, Arcady
    APPLIED SCIENCES-BASEL, 2020, 10 (03):
  • [28] Stress-induced magnetic anisotropy enabling engineering of magnetic softness of Fe-rich amorphous microwires
    Corte-Leon, P.
    Zhukova, V.
    Blanco, J. M.
    Gonzalez-Legarreta, L.
    Ipatov, M.
    Zhukov, A.
    JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2020, 510
  • [29] Stress-induced anisotropy in brine saturated shale
    Delle Piane, C.
    Dewhurst, D. N.
    Siggins, A. F.
    Raven, M. D.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2011, 184 (02) : 897 - 906
  • [30] Study of Stress-Induced Anisotropy in METGLAS 2714
    Sarkar, Partha
    Janosek, Michal
    Petrucha, Vojtech
    Vcelak, Jan
    Ripka, Pavel
    IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (11)