Load measurement and health monitoring in cable stays via guided wave magnetostrictive ultrasonics

被引:0
|
作者
Rizzo, P [1 ]
di Scalea, FL [1 ]
机构
[1] Univ Calif San Diego, NDE & Struct Hlth Monitoring Lab, Dept Struct Engn, La Jolla, CA 92093 USA
关键词
multiwire strands; laser ultrasound; wavelet transform; magnetostriction; guided waves; acoustoelasticity;
D O I
暂无
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Loaded cables made of wires, strands or bars are employed in civil structures as load carrying members in cable stayed and suspension bridges. Steel strands are also employed in prestressed structures for the pretensioning or posttensioning of concrete. Accurate and real time knowledge of the force acting on these stressing systems can contribute immensely to ensuring the safety of a bridge structure. Monitoring cable loads in service can also allow for detection of excessive wind and traffic overloads or, in the worst scenario, problems such as accidental broken wires and corrosion. The overall objective of this paper is to further the understanding of an ultrasonic method that is able to monitor live loads in multiwire steel strands as well as detect possible discontinuities such as indentations and broken wires. The characterization of wave propagation in steel strands is achieved through a broadband, laser ultrasonic setup and time frequency wavelet transform processing. Those vibrating frequencies propagating with minimal losses are identified as they are suitable for long range testing of the strands. In addition, the wave transmission spectra are found to be sensitive to the load level. Sensors based on the magnetostrictive effect are used for the wave generation and detection. The acoustoelastic effect is also considered for live load monitoring. Signal processing based on the discrete wavelet transform is used to enhance the discontinuity detection sensitivity and acquisition speed.
引用
收藏
页码:1057 / 1065
页数:9
相关论文
共 50 条
  • [41] Development of an ultrasonic wave measurement device based on Fiber Bragg Gratings in optical fibers: application to Guided Wave Structural Health Monitoring
    Recoquillay, Arnaud
    Roussel, Nicolas
    Maurin, Laurent
    Druet, Tom
    Laffont, Guillaume
    Chapuis, Bastien
    e-Journal of Nondestructive Testing, 2023, 28 (09):
  • [42] A Guided Wave Transducer with Sprayed Magnetostrictive Powder Coating for Monitoring of Aluminum Conductor Steel-Reinforced Cables
    Lv, Fuzai
    Zhang, Pengfei
    Tang, Zhifeng
    Yue, Yonggang
    Yang, Keji
    SENSORS, 2019, 19 (07)
  • [43] Load impedance measurement on a coaxial cable via time-frequency domain reflectometry
    Kwak, Ki-Seok
    Yoon, Tae Sung
    Park, Jin Bae
    2006 SICE-ICASE INTERNATIONAL JOINT CONFERENCE, VOLS 1-13, 2006, : 5977 - +
  • [44] Guided wave propagation and scattering for structural health monitoring of stiffened composites
    Memmolo, V.
    Monaco, E.
    Boffa, N. D.
    Maio, L.
    Ricci, F.
    COMPOSITE STRUCTURES, 2018, 184 : 568 - 580
  • [45] Development of optical equipment for ultrasonic guided wave structural health monitoring
    Lin, Bin
    Giurgiutiu, Victor
    SMART SENSOR PHENOMENA, TECHNOLOGY, NETWORKS, AND SYSTEMS INTEGRATION 2014, 2014, 9062
  • [46] Design of a guided wave absorber for Structural Health Monitoring system development
    Bilodeau, M.
    Quaegebeur, N.
    Masson, P.
    NDT & E INTERNATIONAL, 2017, 88 : 33 - 41
  • [47] Strategies for overcoming the effect of temperature on guided wave structural health monitoring
    Croxford, Anthony J.
    Wilcox, Paul D.
    Konstantinidis, George
    Drinkwater, Bruce W.
    HEALTH MONITORING OF STRUCTURAL AND BIOLOGICAL SYSTEMS 2007, 2007, 6532
  • [48] Effects of Elevated Temperature on Guided-wave Structural Health Monitoring
    Raghavan, Ajay
    Cesnik, Carlos E. S.
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2008, 19 (12) : 1383 - 1398
  • [49] Ultrasonic guided wave annular array transducers for structural health monitoring
    Gao, H
    Guers, MJ
    Rose, JL
    Zhao, G
    Kwan, C
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 25A AND 25B, 2006, 820 : 1680 - 1686
  • [50] A comparison of temperature compensation methods for guided wave structural health monitoring
    Wilcox, P. D.
    Croxford, A. J.
    Michaeis, J. E.
    Lu, Y.
    Drinkwater, B. W.
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOL 27A AND 27B, 2008, 975 : 1453 - +