DocumentCode :
832724
Title :
Modeling 1-3 composite piezoelectrics: hydrostatic response
Author :
Smith, Wallace Arden
Author_Institution :
ONR, Arlington, VA, USA
Volume :
40
Issue :
1
fYear :
1993
Firstpage :
41
Lastpage :
49
Abstract :
A simple physical model of 1-3 composite piezoelectrics that was advanced for the material properties relevant to thickness-mode oscillations is extended to address the hydrostatic response. The model is valid when the lateral spatial scale of the composite is sufficiently fine that the composite can be treated as an effective homogeneous medium. Expressions are derived for the composite´s material parameters in terms of the volume fraction of piezoelectric ceramic and the properties of the constituent piezoelectric ceramic and passive polymer. The results are similar to those derived by Haun and Newnham (1983, 1986) using a parallel-series connectivity model. The model is illustrated by analyzing composites made from conventional PZT5 and anisotropic modified lead titanate piezoelectric ceramics. For PZT5, the composite structure enhances its hydrostatic charge coefficient, hydrostatic voltage coefficient, hydrophone figure of merit, and hydrostatic coupling coefficient, while three of these quantities fall short of their pure ceramic values in the modified lead titanate composites. The shortfall is due to an enhanced composite that arises from lateral stress on the polymer being transferred to a longitudinal stress along the ceramic rods by the Poisson effect in the polymer, thus producing a charge through the ceramic´s d/sub 33/.<>
Keywords :
composite materials; hydrophones; lead compounds; modelling; piezoelectric transducers; 1-3 composite piezoelectrics; PZT-PbTiO/sub 3/; PZT5; PbZrO3TiO3-PbTiO3; Poisson effect; composite structure; effective homogeneous medium; figure of merit; hydrophone; hydrostatic response; material parameters; parallel-series connectivity model; passive polymer; passive polymer matrix; physical model; piezoceramic rods; piezoelectric ceramic; thickness-mode oscillations; volume fraction; Biomedical imaging; Biomedical transducers; Ceramics; Composite materials; Material properties; Piezoelectric materials; Polymers; Stress; Titanium compounds; Ultrasonic transducers;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.184997
Filename :
184997
Link To Document :
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