Accurate knowledge of the velocity dispersion of Lamb modes is important for ultrasonic nondestructive evaluation methods used in detecting and locating flaws in thin plates and in determining their elastic stiffness coefficients. Lamb mode dispersion is also important in the acoustic emission technique for accurately triangulating the location of emissions in thin plates. In this research, the ability to characterize Lamb mode dispersion through a time-frequency analysis (the pseudo-Wigner–Ville distribution) was demonstrated. A major advantage of time-frequency methods is the ability to analyze acoustic signals containing multiple propagation modes, which overlap and superimpose in the time domain signal. By combining time-frequency analysis with a broadband acoustic excitation source, the dispersion of multiple Lamb modes over a wide frequency range can be determined from as little as a single measurement. In addition, the technique provides a direct measurement of the group velocity dispersion. The technique was first demonstrated in the analysis of a simulated waveform in an aluminum plate in which the Lamb mode dispersion was well known. Portions of the dispersion curves of the and Lamb modes were obtained from this one waveform. The technique was also applied for the analysis of experimental waveforms from a unidirectional graphite/epoxy composite plate. Measurements were made both along and perpendicular to the fiber direction. In this case, the signals contained only the lowest order symmetric and antisymmetric modes. A least squares fit of the results from several source to detector distances was used. Theoretical dispersion curves were calculated and are shown to be in good agreement with experimental results.
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May 01 1999
Time-frequency analysis of the dispersion of Lamb modes Available to Purchase
W. H. Prosser;
W. H. Prosser
NASA Langley Research Center, MS 231, Hampton, Virginia 23681-2199
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Michael D. Seale;
Michael D. Seale
NASA Langley Research Center, MS 231, Hampton, Virginia 23681-2199
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Barry T. Smith
Barry T. Smith
Norfolk Academy, 1585 Wesleyan Drive, Norfolk, Virginia 23502
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W. H. Prosser
Michael D. Seale
Barry T. Smith
NASA Langley Research Center, MS 231, Hampton, Virginia 23681-2199
J. Acoust. Soc. Am. 105, 2669–2676 (1999)
Article history
Received:
October 13 1997
Accepted:
January 15 1999
Citation
W. H. Prosser, Michael D. Seale, Barry T. Smith; Time-frequency analysis of the dispersion of Lamb modes. J. Acoust. Soc. Am. 1 May 1999; 105 (5): 2669–2676. https://doi.org/10.1121/1.426883
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