DocumentCode
2931091
Title
Nonlinear acceleration sensitivity of quartz resonators
Author
Jianfeng Chen ; Yook-Kong Yong ; Kubena, Randall ; Kirby, Deborah ; Chang, David
Author_Institution
Dept. of Civil & Environ. Eng., State Univ. of New Jersey, Piscataway, NJ, USA
fYear
2015
fDate
12-16 April 2015
Firstpage
11
Lastpage
16
Abstract
The nonlinear effects of initial stress/strain of the quartz plate resonator on its acceleration sensitivity was studied. Finite element models were developed using a theory of small deformations superposed on finite initial deformations in a Lagrangian formulation. AT- and SC-cut quartz circular plate resonators were studied. The plates were respectively subjected to diametrical compression force and bending force. The initial strains due to the application of diametrical force represented initial strains due to in-plane acceleration, while the initial strains due to bending force represented initial strains due to out-of-plane acceleration. Our model results using nonlinear initial strains showed good agreement with measured data by Ballato, Mingins, and Fletcher and Douglas. The model results using linear initial strains compared well only with the measured data for plates subjected to diametrical force but not for plates subjected to bending forces. Hence our model results showed that for accurate prediction of out-of-plane acceleration sensitivity the nonlinear initial strains must be used. The linear initial stress/strain cannot fully capture rotation and bending effects. The acceleration sensitivity model using linear initial strains could only be employed for in-plane acceleration, or for very low g out-of-plane acceleration. The SC-cut crystals showed better linearity of frequency change with respect to applied bending forces than the AT-cut crystals. The principle of superposition for out-of-plane acceleration sensitivity in AT-cut crystals is in general not valid, especially in cases of high g accelerations.
Keywords
bending; crystal resonators; deformation; finite element analysis; stress-strain relations; AT-cut quartz circular plate resonator; Lagrangian formulation; SC-cut quartz circular plate resonator; bending force; diametrical compression force; finite element model; finite initial deformation; initial stress-strain effect; nonlinear acceleration sensitivity model; Acceleration; Azimuth; Crystals; Force; Resonant frequency; Sensitivity; Strain; AT- and SC-cut crystals; Geometric nonlinearity; In-plane acceleration sensitivity; Out-of-plane acceleration sensitivity; linear initial strains; nonlinear initial strains;
fLanguage
English
Publisher
ieee
Conference_Titel
Frequency Control Symposium & the European Frequency and Time Forum (FCS), 2015 Joint Conference of the IEEE International
Conference_Location
Denver, CO
Print_ISBN
978-1-4799-8865-5
Type
conf
DOI
10.1109/FCS.2015.7138783
Filename
7138783
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