DocumentCode :
763804
Title :
A finite plate technique for the determination of piezoelectric material constants
Author :
Kosinski, John A. ; Ballato, Arthur ; Lu, Yicheng
Author_Institution :
Phys. Sci. Directorate, US Army Res. Lab., Fort Monmouth, NJ, USA
Volume :
43
Issue :
2
fYear :
1996
fDate :
3/1/1996 12:00:00 AM
Firstpage :
280
Lastpage :
284
Abstract :
An improved resonator method is presented for the determination of piezoelectric material constants. The improved method addresses a fundamental limitation of the measurement methods recommended in the current IEEE Standard on Piezoelectricity: the relations between vibrator response and material constants presented in this Standard are based upon the 1-D approximation of an essentially infinite flat plate with a uniform distribution of vibratory motion. The calculation or measurement of the effects due to the nonuniform vibrational amplitude distribution in a laterally bounded plate is a nontrivial task. The practical result is that the current IEEE 176-1987 resonator method recommendations are of limited usefulness in the determination of "intrinsic" piezoelectric material constants. This limitation can, however, readily be overcome using an improved measurement technique based on measurands unaffected by the vibrational amplitude distribution. In the improved technique, the measurands of choice are the zero-mass-loading, fundamental mode, thickness-field excitation (TE) antiresonance, or lateral-field excitation (LE) resonance frequencies. A recommended experimental procedure, using the preferred measurands, is presented.
Keywords :
IEEE standards; crystal resonators; dielectric measurement; measurement standards; piezoelectric materials; 1-D approximation; IEEE 176-1987 resonator method; IEEE Standard on Piezoelectricity; finite plate technique; fundamental limitation; fundamental mode frequencies; improved resonator method; infinite flat plate; lateral-field excitation resonance frequencies; laterally bounded plate; material constants; measurands; measurement methods; nonuniform vibrational amplitude distribution; piezoelectric material constants; thickness-field excitation antiresonance frequencies; vibrator response; zero-mass-loading frequencies; Current measurement; Frequency measurement; Measurement standards; Measurement techniques; Motion measurement; Piezoelectric materials; Piezoelectricity; Tellurium; Thickness measurement; Vibration measurement;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.485954
Filename :
485954
Link To Document :
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