DocumentCode :
3472002
Title :
Two- and three-dimensional finite element time and frequency domain analysis for the complex 1-3 type piezocomposite material transducer
Author :
Huang, Dehua ; Boucher, S.G.
Author_Institution :
Airmar Technol. Corp., Milford, NH, USA
Volume :
2
fYear :
1995
fDate :
7-10 Nov 1995
Firstpage :
985
Abstract :
Piezocomposites of the 1-3 type have become the transducer material of choice for medical imaging and nondestructive evaluation, where the half wavelength thickness mode has typical frequency in the megahertz range. For marine applications, transducers resonant in the kilohertz range are typical. The objective of this work is to apply the FEM simulation for a new complex 1-3 type composite and verify the predictions by experiment. To retain the advantages of the conventional 1-3 type composite material around (or below) 100 kHz, we devised a complex rod configuration for 1-3 type with composite. Each rod contained a ceramic sandwiched between an aluminum head mass and steel tail mass. To simulate the new complex 1-3 type composite material transducer in both frequency and time domains, we apply quantum mechanics Dirac notation to derive a complete set of finite element constitutive equations with damping. Solving equations in frequency domain, we compute transducer electrical impedance, resonant and antiresonant frequencies, transmitting voltage response (TVR), receiving voltage response (RVR) and figure of merit (insertion loss), etc. By utilizing the numerical discrete fast Fourier transform (DFFT) and inverse discrete fast Fourier transform (IDFFT), we are also able to calculate the impulse response, sound pressure field, wave forms due to different driving voltages, etc. A typical time domain analysis example for the new complex 1-3 type composite transducer is presented
Keywords :
composite materials; discrete Fourier transforms; finite element analysis; frequency-domain analysis; piezoceramics; piezoelectric transducers; time-domain analysis; ultrasonic transducers; 100 kHz; 80 to 125 kHz; Al; aluminum head mass; antiresonant frequencies; ceramic; complex 1-3 type piezocomposite material transducer; complex rod configuration; constitutive equations; damping; electrical impedance; figure of merit; finite element analysis; frequency domain analysis; inverse discrete fast Fourier transform; marine applications; medical imaging; nondestructive evaluation; numerical discrete fast Fourier transform; quantum mechanics Dirac notation; receiving voltage response; resonant frequencies; steel tail mass; three-dimensional FEM; time domain analysis; transmitting voltage response; two-dimensional FEM; Acoustic transducers; Biomedical imaging; Biomedical transducers; Composite materials; Equations; Fast Fourier transforms; Finite element methods; Frequency domain analysis; Resonance; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium, 1995. Proceedings., 1995 IEEE
Conference_Location :
Seattle, WA
ISSN :
1051-0117
Print_ISBN :
0-7803-2940-6
Type :
conf
DOI :
10.1109/ULTSYM.1995.495728
Filename :
495728
Link To Document :
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