DocumentCode
1090046
Title
Lee plate equations for electroded quartz crystal plates with the consideration of electrode density and stiffness
Author
Wang, Ji ; Chen, Guojun ; Du, Jianke
Author_Institution
Ningbo Univ., Ningbo
Volume
55
Issue
2
fYear
2008
fDate
2/1/2008 12:00:00 AM
Firstpage
503
Lastpage
507
Abstract
Lee plate equations for high-frequency vibrations of piezoelectric plates have been established and improved over the last decades with the sole objective of obtaining the accurate prediction of frequency and mode shapes to aid crystal resonator design. The latest improvement includes extra terms related to derivatives of the flexural displacement to adjust the accuracy and consider electrodes for practical applications. As part of the efforts to make the equations applicable for resonator design with the improved frequency accuracy and consideration of electrodes, we derived Lee plate equations for electroded plates by changing the integration limits in the dimension reduction procedure to signify the dominant role of the crystal plate. By modifying the density terms in plate equations to include the contribution of both electrode stiffness and density, the accuracy of the thickness-shear vibration frequency of electroded plates is improved for commonly used electrode materials.
Keywords
bending; crystal resonators; density; elastic constants; electrodes; integration; piezoelectric materials; plates (structures); quartz; vibrational modes; Lee plate equations; crystal resonator design; electrode density; electroded quartz crystal plates; flexural displacement; integration limits; piezoelectric plates; stiffness; thickness-shear vibration frequency; Circuits; Cities and towns; Crystalline materials; Cutoff frequency; Electrodes; Equations; Finite element methods; Local government; Shape; Technological innovation;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2008.669
Filename
4460885
Link To Document