Center frequency shift in pipe inspection using magnetostrictive guided waves

被引:15
作者
Hu, Chaoyue [1 ]
Xu, Jiang [1 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Mech Sci & Engn, Wuhan, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
Center frequency shift; Magnetostrictive effect; Guided wave; Sensor; FATIGUE DAMAGE; ELASTIC-WAVES; STEEL PIPES; GENERATION; DEVICE; MODEL;
D O I
10.1016/j.sna.2019.111583
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
Magnetostrictive guided wave technology is widely employed to inspect pipes. In general, it is assumed that the center frequency of the exciting signal is the same as that of the receiving signal; however, this assumption does not hold in practice. To elucidate this phenomenon, we investigate the reason behind the center frequency shift (CFS) based on the energy coupling mechanism of magnetostrictive guided waves; we construct a theoretical model to calculate the CFS of the receiving signal. The detection process for guided waves is separated into three stages: excitation, propagation, and reception. At the exciting stage, the width of the coil affects the alternating magnetic field distribution. The vibration generated by the alternating magnetic field with a certain width produces a superimposed strain, which results in the CFS of the generating wave. At the propagating stage, we consider that the center frequency of the guided wave remains unchanged because the propagation is a linear process. At the receiving stage, the coil length determines the size of the induction area and the magnetic induction at a point is determined by the strain around that point. The number of coil turns, the distance of two adjacent wires, and the differential during the process of the electromagnetic induction affect the frequency of the induction signal, which leads to the CFS of the receiving signal. The center frequency of the receiving signal decreases with increasing coil width. Experiments are performed to verify that the theoretical model and the experimental results are in good agreement with the theoretical results. The model developed in this study provides a reference for the design of magnetostrictive guided wave sensors. (C) 2019 Elsevier B.V. All rights reserved.
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页数:9
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共 44 条
  • [1] A New and Accurate System for Measuring Cruising Yacht Freeboards With Magnetostrictive Sensors
    Baronti, Federico
    Fantechi, Gabriele
    Roncella, Roberto
    Saletti, Roberto
    [J]. IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2011, 60 (05) : 1811 - 1819
  • [2] The possibility of utilizing the high permeability magnetic materials in construction of magnetoelastic stress and force sensors
    Bienkowski, A
    Szewczyk, R
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2004, 113 (03) : 270 - 276
  • [3] A vibration amplitude model for the giant magnetostrictive ultrasonic processing system
    Cai, Wanchong
    Zhang, Jianfu
    Yu, Dingwen
    Feng, Pingfa
    Wang, Jianjian
    [J]. JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2018, 29 (04) : 574 - 584
  • [4] The effect of complex defect profiles on the reflection of the fundamental torsional mode in pipes
    Carandente, Rosalba
    Cawley, Peter
    [J]. NDT & E INTERNATIONAL, 2012, 46 : 41 - 47
  • [5] Structural magnetic strain model for magnetostrictive transducers
    Dapino, MJ
    Smith, RC
    Flatau, AB
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2000, 36 (03) : 545 - 556
  • [6] Notch detection in copper tubes immersed in water by leaky compressional guided waves
    Djili, Sonia
    Benmeddour, Farouk
    Moulin, Emmanuel
    Assaad, Jamal
    Boubenider, Fouad
    [J]. NDT & E INTERNATIONAL, 2013, 54 : 183 - 188
  • [7] Interaction of weld-guided waves with defects
    Fan, Z.
    Lowe, M. J. S.
    [J]. NDT & E INTERNATIONAL, 2012, 47 : 124 - 133
  • [8] Axial magnetized patch for efficient transduction of longitudinal guided wave and defect identification in concrete-covered pipe risers
    Fang, Zhou
    Tse, Peter W.
    [J]. STRUCTURAL CONTROL & HEALTH MONITORING, 2018, 25 (10)
  • [9] Design of a magnetostrictive (MS) actuator
    Grunwald, A.
    Olabi, A. G.
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2008, 144 (01) : 161 - 175
  • [10] A new position sensor based on the MDL technique
    Hristoforou, E.
    Dimitropoulos, P. D.
    Petrou, J.
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2006, 132 (01) : 112 - 121