Impact localization in composite structures of arbitrary cross section

被引:78
|
作者
Ciampa, Francesco
Meo, Michele [1 ]
Barbieri, Ettore [2 ]
机构
[1] Univ Bath, Dept Mech Engn, Bath BA2 7AY, Avon, England
[2] Univ Oxford, Oxford OX1 2JD, England
关键词
Impact location identification; composite structures; continuous wavelet transform; Lamb waves; SOURCE LOCATION; IDENTIFICATION; PLATE;
D O I
10.1177/1475921712451951
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This article proposes an in situ structural health monitoring method able to locate the impact source and to determine the flexural Lamb mode A(0) velocity in composite structures with unknown lay-up and cross section. The algorithm is based on the differences of the stress waves measured by six surface-attached acoustic emission piezoelectric (lead zirconate titanate) sensors and is branched off into two steps. In the first step, the magnitude of the squared modulus of continuous wavelet transform, which guarantees high accuracy in the time-frequency analysis of the acoustic waves, was used to identify the time of arrival of the flexural Lamb wave. Then, the coordinates of the impact location and the group speed values are obtained by solving a set of non-linear equations through a combination of local Newton's iterative method associated with line search and polynomial backtracking techniques. The proposed method, in contrast to the current impact localization algorithms, does not require a priori knowledge of the anisotropy angular-group velocity pattern of the measured waveforms as well as the mechanical properties of the structure. To validate this method, experimental location testing was conducted on two different composite structures: a quasi-isotropic carbon fibre-reinforced plastic laminate and a sandwich panel. The results showed that source location was achieved with satisfactory accuracy (maximum error in estimation of the impact location was approximately 3 mm for quasi-isotropic carbon fibre-reinforced plastic panel and nearly 2 mm for sandwich plate), requiring little computational time (nearly 1 s). In addition, the values of the fundamental flexural Lamb mode A(0) obtained from the optimization algorithm were compared with those determined by a numerical spectral finite element method.
引用
收藏
页码:643 / 655
页数:13
相关论文
共 50 条
  • [1] Composite beam analysis with arbitrary cross section
    Taufik, Atik
    Barrau, Jean Jacques
    Lorin, Francois
    Composite Structures, 1999, 44 (02): : 189 - 194
  • [2] Composite beam analysis with arbitrary cross section
    Taufik, A
    Barrau, JJ
    Lorin, F
    COMPOSITE STRUCTURES, 1999, 44 (2-3) : 189 - 194
  • [3] Internal Impedance of Composite Conductors with Arbitrary Cross Section
    Demeester, Thomas
    De Zutter, Daniel
    IEEE TRANSACTIONS ON ELECTROMAGNETIC COMPATIBILITY, 2009, 51 (01) : 101 - 107
  • [4] TORSION OF COMPOSITE ELASTIC BARS OF ARBITRARY CROSS SECTION
    SPARROW, EM
    YU, HS
    JOURNAL OF ENGINEERING FOR INDUSTRY-TRANSACTIONS OF THE ASME, 1968, 90 (03): : 435 - &
  • [5] TORSION OF COMPOSITE ELASTIC BARS OF ARBITRARY CROSS SECTION
    SPARROW, EM
    YU, HS
    MECHANICAL ENGINEERING, 1968, 90 (01) : 68 - &
  • [6] Reliability verification for composite structures of annular cross section
    A. K. Kvedaras
    A. Kudzys
    B. Valiūnas
    Mechanics of Composite Materials, 2009, 45 : 407 - 414
  • [7] Reliability verification for composite structures of annular cross section
    Kvedaras, A. K.
    Kudzys, A.
    Valiunas, B.
    MECHANICS OF COMPOSITE MATERIALS, 2009, 45 (04) : 407 - 414
  • [8] Design of composite columns of arbitrary cross-section subject to biaxial bending
    Chen, SF
    Teng, JG
    Chan, SL
    ADVANCES IN STEEL STRUCTURES, VOLS 1 AND 2, 1999, : 443 - 450
  • [9] A generalization of the Lucas–Washburn–Rideal law to composite microchannels of arbitrary cross section
    J. Berthier
    D. Gosselin
    E. Berthier
    Microfluidics and Nanofluidics, 2015, 19 : 497 - 507
  • [10] Composite Bars of Arbitrary Cross Section in Nonlinear Elastic Nonuniform Torsion by BEM
    Sapountzakis, E. J.
    Tsipiras, V. J.
    JOURNAL OF ENGINEERING MECHANICS, 2009, 135 (12) : 1354 - 1367