DocumentCode :
873442
Title :
A perturbation method for predicting the temperature and stress sensitivities of quartz vibrating structures simulated by finite-element analysis
Author :
Ballandras, Sylvain
Author_Institution :
Institut Franche-comte Electron. Mecanique Thermique Optique-Sci. et Technol., Centre Nat. de la Recherche Sci., Besancon
Volume :
53
Issue :
11
fYear :
2006
fDate :
11/1/2006 12:00:00 AM
Firstpage :
2086
Lastpage :
2094
Abstract :
Thermal and mechanical sensitivities of vibrating structures arid wave guides are key parameters for the optimization of high stability resonant devices operating in the ultrasonic frequency range (from a few tenth of kilohertz to a few gigahertz). In this paper, the possibility to simulate arid predict temperature coefficients of frequency (TCF) of quartz transducers of any shape as well as their stress sensitivity coefficients is addressed. The theoretical developments based on harmonic finite-element analysis coupled with a variational perturbation method are detailed, showing how to derive the regarded parameters. The proposed approach is validated using a two-dimensional (2-D) model of a plane face-bulk acoustic resonator for which an analytical model can give access to both TCF and stress sensitivity coefficients. It is then applied to a 2-D model of convex plane bulk acoustic resonator of singly rotated quartz and used to compute the first order TCF of a 3-D model of a tuning fork structure. In the latter case, the importance of considering the actual excitation of the device is demonstrated, allowing for the accurate definition of angular loci for which thermal compensation can be expected, in agreement with literature. Possible extensions arid improvements of the proposed method is discussed in conclusion
Keywords :
acoustic resonators; acoustic transducers; finite element analysis; perturbation techniques; variational techniques; vibrations; convex plane bulk acoustic resonator; harmonic finite-element analysis; perturbation method; plane face-bulk acoustic resonator; quartz transducers; quartz vibrating structures; stress sensitivity coefficients; thermal compensation; tuning fork structure; two-dimensional model; ultrasonic frequency range; variational perturbation method; waveguides; Acoustic transducers; Analytical models; Finite element methods; Frequency; Perturbation methods; Predictive models; Resonance; Temperature sensors; Thermal stability; Thermal stresses;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2006.148
Filename :
4037216
Link To Document :
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