DocumentCode :
296760
Title :
The influence of mode shape on the acceleration sensitivity of SAW resonators
Author :
Kosinski, J.A. ; Stewart, J.T. ; Gualtieri, J.G. ; Himmel, J.S. ; McGowan, R.C. ; Huynh, D. ; Ballato, A. ; Filler, R.L.
Author_Institution :
US Army Res. Lab., Fort Monmouth, NJ, USA
Volume :
1
fYear :
1995
fDate :
7-10 Nov 1995
Firstpage :
183
Abstract :
The acceleration-induced frequency shifts for distinct transverse modes of surface acoustic wave (SAW) resonators have been calculated and experimentally validated using a 98.5 MHz SAW resonator. The calculations were made using a recently developed finite element approach to develop numerical solutions for the static biasing state. The SAW mode shapes were determined by applying the variational formulation of Sinha and Tiersten. The calculated mode shapes were compared to actual resonator transverse mode shapes imaged using acousto-optic diffraction with a beam-expanded helium-neon (HeNe) laser to visualize the acoustic power flow. The static biasing state solutions were combined with the calculated mode shapes to compute theoretical acceleration-induced frequency shifts using the perturbation integral formulation derived by Tiersten. For the experimental confirmation, the 98.5 MHz SAW resonator was mounted in a voltage controlled oscillator (VCO) and submitted to acceleration sensitivity tests at frequencies corresponding to those resonator transverse modes previously imaged. The theoretical and experimental frequency shifts both indicate that the acceleration sensitivity of SAW resonators does not strongly depend on the transverse mode shape
Keywords :
finite element analysis; frequency stability; surface acoustic wave oscillators; surface acoustic wave resonators; variational techniques; voltage-controlled oscillators; 98.5 MHz; SAW mode shapes; SAW resonators; acceleration sensitivity; acceleration-induced frequency shifts; acoustic power flow; acousto-optic diffraction; distinct transverse modes; finite element approach; perturbation integral formulation; static biasing state; static biasing state solutions; transverse mode shapes; variational formulation; voltage controlled oscillator; Acceleration; Acoustic diffraction; Acoustic waves; Finite element methods; Frequency; Laser modes; Laser theory; Shape; Surface acoustic waves; Voltage-controlled oscillators;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium, 1995. Proceedings., 1995 IEEE
Conference_Location :
Seattle, WA
ISSN :
1051-0117
Print_ISBN :
0-7803-2940-6
Type :
conf
DOI :
10.1109/ULTSYM.1995.495565
Filename :
495565
Link To Document :
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