• DocumentCode
    825492
  • Title

    Determination of lamb wave dispersion data in lossy anisotropic plates using time domain finite element analysis. Part I: theory and experimental verification

  • Author

    Hayward, Gordon ; Hyslop, Jamie

  • Author_Institution
    The Center for Utrasonic Eng., Strathclyde Univ., Glasgow, UK
  • Volume
    53
  • Issue
    2
  • fYear
    2006
  • Firstpage
    443
  • Lastpage
    448
  • Abstract
    A theoretical and experimental approach for extraction of guided wave dispersion data in plate structures is described. Finite element modeling is used to calculate the surface displacement data (in-plane and out-of-plane) when the plate is subject to either symmetrical or antisymmetrical impulsive force stimulation at one or both of the parallel faces. Fourier transformation of the resultant space-time displacement histories is then employed to obtain phase velocity as a function of frequency. Experimental verification in the case of antisymmetrical stimulation is provided by means of a high-power Q-switched laser source that is used to excite guided waves in the plate. The subsequent out-of-plane displacement data were then obtained by means of a scanning laser vibrometer, and good agreement between theory and experiment is demonstrated. Examples of dispersion data are provided for aluminum, and excellent correlation between the data sets and conventional Rayleigh-Lamb theory for plate structures was obtained. This was then extended to lossy polymeric plates, in addition to both unpolarized and polarized piezoelectric ceramic plates, again with good agreement between the finite element modeling and optical experiments. The last set of results prepares the way for a detailed investigation of the nonhomogeneous piezoelectric composite waveguides described in a companion paper (Part II).
  • Keywords
    Fourier transforms; Q-switching; Rayleigh waves; acoustic dispersion; dielectric polarisation; finite element analysis; laser beam applications; piezoceramics; plates (structures); surface acoustic waves; Fourier transformation; antisymmetrical impulsive force stimulation; conventional Rayleigh-Lamb theory; dispersion; experimental verification; finite element modeling; guided wave dispersion data; high-power Q-switched laser source; lamb wave dispersion data; lossy anisotropic plates; lossy polymeric plates; nonhomogeneous piezoelectric composite waveguides; out-of-plane displacement; phase velocity; piezoelectric ceramic plates; plate structures; resultant space-time displacement; scanning laser vibrometer; surface displacement; symmetrical impulsive force stimulation; theory; time domain finite element analysis; Anisotropic magnetoresistance; Data mining; Finite element methods; Frequency; History; Laser excitation; Laser theory; Optical polymers; Optical surface waves; Time domain analysis; Anisotropy; Computer Simulation; Elasticity; Energy Transfer; Finite Element Analysis; Models, Chemical; Polymers; Stress, Mechanical; Transducers; Vibration;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2006.1593383
  • Filename
    1593383