This paper further demonstrates the ability of piezoceramic bimorph bender elements to preferentially generate and receive near-surface shear waves for in situ sediment characterization measurements, in terrestrial as well as marine clay soils. The bimorph elements are housed in probe transducers that can manually be inserted into the sediment and are based on the work of Shirley [J. Acoust. Soc. Am. 63 (5), 1643-1645 (1978)] and of Richardson et. al. [Geo. - Marine Ltrs., 196-203 (1997)]. The transducers can discretely generate and receive horizontally polarized shear waves, within their bimorph directivity patterns. The use of multiple probes allows one to measure the shear wave velocity and attenuation parameters in the sediment of interest. Measured shear wave data on a hard clay terrestrial soil, as well as on soft marine sediments, are presented. These parameters along with density and compressional wave velocity define the elastic moduli (Poisson's ratio, shear modulus, and bulk modulus) of the sediment, which are of interest in various areas of geophysics, underwater acoustics, and geotechnical engineering. Discussion will focus on use of the probes in both terrestrial and marine sediment environments. [Work supported by the US Army Engineer Research and Development Center, Vicksburg, and by ARL:UT Austin]
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27 October 2014
168th Meeting of the Acoustical Society of America
27-31 October 2014
Indianapolis, Indiana
Engineering Acoustics: Paper 4aEA7
Article Contents
April 27 2015
Investigation of piezoelectric bimorph bender transducers to generate and receive shear waves Free
Andrew R. McNeese
;
Andrew R. McNeese
1Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]
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Kevin M. Lee;
Kevin M. Lee
1Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]
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Megan S. Ballard;
Megan S. Ballard
1Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]
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Thomas G. Muir;
Thomas G. Muir
1Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]
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Preston S. Wilson
Preston S. Wilson
1Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]
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Andrew R. McNeese
1
Kevin M. Lee
1
Megan S. Ballard
1
R. Daniel Costley
2
Thomas G. Muir
1
Preston S. Wilson
1
1
Applied Res. Labs.,
The University of Texas
at Austin, Austin, TX 78713-8029, USA
; [email protected]; [email protected]; [email protected]; [email protected]; [email protected]Proc. Mtgs. Acoust. 22, 030001 (2014)
Article history
Received:
January 29 2015
Accepted:
April 23 2015
Citation
Andrew R. McNeese, Kevin M. Lee, Megan S. Ballard, R. Daniel Costley, Thomas G. Muir, Preston S. Wilson; Investigation of piezoelectric bimorph bender transducers to generate and receive shear waves. Proc. Mtgs. Acoust. 27 October 2014; 22 (1): 030001. https://doi.org/10.1121/2.0000036
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