DocumentCode
825504
Title
Determination of lamb wave dispersion data in lossy anisotropic plates using time domain finite element analysis. Part II: application to 2-2 and 1-3 piezoelectric composite transducer arrays
Author
Hayward, Gordon ; Hyslop, Jamie
Author_Institution
The Center for Ultrasonic Eng., Strathclyde Univ., Glasgow, UK
Volume
53
Issue
2
fYear
2006
Firstpage
449
Lastpage
455
Abstract
The use of finite element modeling, combined with optical generation and detection of Lamb waves in plate structures, was extended to encompass periodic ceramic-polymer materials typical of those encountered in 1-3 and 2-2 piezoelectric composite array transducers. The resultant dispersion data was employed to predict the occurrence of Lamb wave-induced cross talk in composite monolithic arrays. The finite element modeling method was then used to simulate the dispersion behavior of two array structures that were subsequently manufactured: a 1-D 45% volume fraction linear array coupon and a 2-D 35% volume fraction array coupon. Excellent agreement between theory and experiment was obtained using impedance measurements and laser scans of the surface displacement profile at selected frequencies. Regions of strong inter-element cross-coupling were identified and these are shown to correlate very well with the dispersion data obtained for the dual-phase plate material. This work is considered to provide a useful basis for the design of wideband monolithic composite arrays and minimization of guided wave propagation along the array substrate.
Keywords
acoustic dispersion; acoustic impedance; composite materials; finite element analysis; periodic structures; piezoceramics; piezoelectric transducers; plates (structures); surface acoustic waves; Lamb wave-induced cross talk; composite monolithic arrays; dual-phase plate material; finite element modeling; guided wave propagation; impedance measurements; interelement cross-coupling; lamb wave dispersion; laser scans; lossy anisotropic plates; optical generation; periodic ceramic-polymer materials; piezoelectric composite transducer arrays; plate structures; resultant dispersion; surface displacement profile; time domain finite element analysis; volume fraction; wideband monolithic composite arrays; Anisotropic magnetoresistance; Finite element methods; Geometrical optics; Optical arrays; Optical detectors; Optical losses; Optical materials; Periodic structures; Piezoelectric transducers; Time domain analysis; Anisotropy; Computer Simulation; Elasticity; Electrochemistry; Energy Transfer; Finite Element Analysis; Models, Chemical; Polymers; Stress, Mechanical; Transducers; Ultrasonography; Vibration;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2006.1593384
Filename
1593384
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