Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Analysis of the sandwich piezoelectric ultrasonic transducer in coupled vibration

View through CrossRef
The coupled vibration of the sandwich piezoelectric transducer with a large cross-section is analyzed using an approximate analytic method. The resonance frequency equations of the transducer are derived and the effect of the geometrical dimensions on the resonance frequency is studied. It is illustrated that when the radial vibration in the transducer is considered, the vibration of the sandwich transducer becomes more complex. Apart from the longitudinal resonance frequency, the radial resonance frequency can also be obtained. For comparison, numerical methods are also used to simulate the coupled vibration; the resonance frequency and the vibrational displacement distribution are computed. Compared with one-dimensional longitudinal theory, the radial dimensions of the transducer are no longer limited because the coupled vibration is considered. Compared with numerical methods, the physical meaning of the analytic method is concise. It is illustrated that the resonance frequencies obtained from the coupled resonance frequency equations are in good agreement with those from numerical methods, and they are in better agreement with the measured results than those from one-dimensional theory. Since the radial and the coupled vibration are considered in the analysis, more resonance frequencies can be obtained. Therefore, using the coupled resonance frequency equations, the sandwich transducer with multifrequency or wide frequency bandwidth can be designed and used in ultrasonic cleaning, ultrasonic sonochemistry and other applications.
Title: Analysis of the sandwich piezoelectric ultrasonic transducer in coupled vibration
Description:
The coupled vibration of the sandwich piezoelectric transducer with a large cross-section is analyzed using an approximate analytic method.
The resonance frequency equations of the transducer are derived and the effect of the geometrical dimensions on the resonance frequency is studied.
It is illustrated that when the radial vibration in the transducer is considered, the vibration of the sandwich transducer becomes more complex.
Apart from the longitudinal resonance frequency, the radial resonance frequency can also be obtained.
For comparison, numerical methods are also used to simulate the coupled vibration; the resonance frequency and the vibrational displacement distribution are computed.
Compared with one-dimensional longitudinal theory, the radial dimensions of the transducer are no longer limited because the coupled vibration is considered.
Compared with numerical methods, the physical meaning of the analytic method is concise.
It is illustrated that the resonance frequencies obtained from the coupled resonance frequency equations are in good agreement with those from numerical methods, and they are in better agreement with the measured results than those from one-dimensional theory.
Since the radial and the coupled vibration are considered in the analysis, more resonance frequencies can be obtained.
Therefore, using the coupled resonance frequency equations, the sandwich transducer with multifrequency or wide frequency bandwidth can be designed and used in ultrasonic cleaning, ultrasonic sonochemistry and other applications.

Related Results

Research on acoustic control of coupled vibration system of transducers using acoustic surface and topological defect structures
Research on acoustic control of coupled vibration system of transducers using acoustic surface and topological defect structures
<sec>How to regulate the sound waves in the coupled vibration system of complex power ultrasonic transducers and design high-performance transducer systems has always been an...
Surface and defect controlled high power piezoelectric ultrasonic transducers
Surface and defect controlled high power piezoelectric ultrasonic transducers
<sec>Researches have shown that a reasonably designed phononic crystal defect structure in high-power piezoelectric ultrasonic transducers can effectively suppress stray vibr...
Intelligent optimization design of large-scale three-dimensional ultrasonic vibration system
Intelligent optimization design of large-scale three-dimensional ultrasonic vibration system
Large-scale three-dimensional ultrasonic vibration systems are susceptible to the influence of coupled vibration, resulting in a series of problems such as increased energy loss, s...
Optimization of the performance of the sandwich piezoelectric ultrasonic transducer
Optimization of the performance of the sandwich piezoelectric ultrasonic transducer
The resonance and antiresonance frequency, the effective electromechanical coupling coefficient, and the mechanical quality factor of a sandwich piezoelectric ultrasonic transducer...
Review of high temperature piezoelectric materials, devices, and applications
Review of high temperature piezoelectric materials, devices, and applications
Piezoelectric functional materials have been extensively studied and employed in numerous devices. With the rapid development of modern industries, such as power plants, aerospace,...
Analysis of the Vibration Isolation Effect of the Railway Rigid Sandwich Wall
Analysis of the Vibration Isolation Effect of the Railway Rigid Sandwich Wall
The vibration isolation effect of the rigid sandwich wall was measured and the characteristics of time and frequency domain at low frequency was analyzed on the basis of the enviro...
Research on the Formation Mechanism of Surface Morphology in Three-Excitation Ultrasonic Spatial Vibration-Assisted Turning
Research on the Formation Mechanism of Surface Morphology in Three-Excitation Ultrasonic Spatial Vibration-Assisted Turning
Abstract To improve the machining performance of different processing materials, a three-excitation ultrasonic spatial vibration-assisted turning system is proposed, which ...

Back to Top