DocumentCode :
1276206
Title :
Finite element analysis of a deformable array transducer
Author :
Ries, Loriann L. ; Smith, Stephen W.
Author_Institution :
ATL Ultrasound, Bothell, WA, USA
Volume :
46
Issue :
6
fYear :
1999
Firstpage :
1352
Lastpage :
1363
Abstract :
Deformable array transducers have previously been described to implement 2-D phase aberration correction of near-field aberrators with only a 1/spl times/N or 2/spl times/N array configuration. This transducer design combines mechanical phase correction using an actuator with electronic phase correction for a 2-D correction with significantly fewer elements than a full 2-D array. We have previously reported the fabrication and results of a 1/spl times/32 deformable array fabricated with a RAINBOW (Reduced And INternally Biased Wafer) actuator. Because of the complicated construction of deformable arrays, we propose to use finite element analysis (FEA) as a design tool for array development. In this paper, we use 2-D and 3-D FEA to model the experimental results of the deformable array as the first step toward development of a design tool. Because the deformable array combines a mechanical actuator with a medical ultrasound transducer, improvement in performance must consider both the ultrasound characterization along with the low frequency actuator characterization. For the ultrasound characterization, time domain FEA simulations of electrical vector impedance accurately predicted the measurements of single array elements. Additionally, simulations of pulse-echo sensitivity and bandwidth were also well matched to measurements. For the low frequency actuator characterization, time domain simulation of the low frequency vector impedance accurately predicted measurement and confirmed the fundamental flexure resonance of the cantilever configuration at 1.3 kHz. Frequency domain FEA included thermal processing effects and predicted actuator curvature arising during fabrication. Finally, frequency domain FEA simulations of voltage-induced displacement accurately predicted measured displacement.
Keywords :
biomedical transducers; biomedical ultrasonics; finite element analysis; ultrasonic transducer arrays; 1.3 kHz; 2-D phase aberration correction; actuator curvature; cantilever configuration; deformable array transducer; design tool; electrical vector impedance; finite element analysis; flexure resonance; mechanical actuator; medical ultrasound transducer; near-field aberrators; pulse-echo sensitivity; thermal processing effects; time domain FEA; voltage-induced displacement; Actuators; Fabrication; Field emitter arrays; Finite element methods; Frequency; Phased arrays; Predictive models; Transducers; Ultrasonic imaging; Ultrasonic variables measurement;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.808858
Filename :
808858
Link To Document :
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