Title :
Efficiency of excitation of piezoceramic transducers at antiresonance frequency
Author :
Mezheritsky, Alex V.
Author_Institution :
Ceramics Dept., PHONON Co., Moscow, Russia
fDate :
4/1/2002 12:00:00 AM
Abstract :
The efficiency of piezoceramic transducers excited at both the resonance and antiresonance frequency was investigated. Losses in piezoceramics are phenomenologically considered to have three coupled mechanisms: dielectric, mechanical, and piezoelectric losses. Expressions for the resonance and antiresonance quality factors, which ultimately determine transducer efficiency, have been received on the basis of complex material constants for both stiffened and unstiffened vibration modes. Comparison of electric and mechanical fields, thermal and electrical losses of power supply, and their distribution in the transducer volume have been made. For a given constant mechanical displacement of the transducer top, the required electric voltage applied to the transducer at the antiresonance frequency is proportional to the resonance quality factor, but the changes in the intrinsic electric and mechanical field characteristics in the common case are not too essential. The requirements on the piezoceramic parameters, types of transducer vibration, and especially on the factor of piezoelectric losses in a range of physically valid values were established to provide maximal quality factors at the antiresonance frequency.
Keywords :
Q-factor; dielectric losses; piezoceramics; piezoelectric transducers; vibrations; antiresonance frequency excitation efficiency; antiresonance quality factors; complex material constants; constant mechanical displacement; dielectric losses; electric voltage; intrinsic electric field characteristics; intrinsic mechanical field characteristics; maximal quality factors; mechanical losses; piezoceramic transducers; piezoelectric losses; power supply losses; resonance frequency; resonance quality factors; stiffened vibration modes; transducer efficiency; transducer vibration; unstiffened vibration modes; Dielectric losses; Dielectric materials; Piezoelectric materials; Piezoelectric transducers; Power supplies; Q factor; Resonance; Resonant frequency; Vibrations; Voltage;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on