Modeling and electromechanical performance analysis of frequency-variable piezoelectric stack transducers

Author:

Wang Jianjun1ORCID,Cai Shuyuan1,Qin Lei2,Liu Donghuan1ORCID,Wei Peijun1,Tang Lihua3ORCID

Affiliation:

1. Department of Applied Mechanics, School of Mathematics and Physics, University of Science and Technology Beijing, Beijing, P.R. China

2. Beijing Key Laboratory for Sensors, Beijing Information Science & Technology University, Beijing, P.R. China

3. Department of Mechanical Engineering, The University of Auckland, Auckland, New Zealand

Abstract

An exact analytical model of frequency-variable piezoelectric stack transducers is proposed, and their dynamic characteristics are studied in this article. Based on the linear piezoelasticity theory, the dynamic analytical solution is first derived, and then its correctness is validated by comparing it with the results of a special example in the previous literature and the ones of the experimental study. The effects of the tuning resistance and the layer number of the active element on the dynamic characteristics are discussed. Numerical results show that tuning the resistance and the layer number of the active element can enable the multi-frequency characteristics of the piezoelectric stack transducers. A proper layer number of the active element can minimize the short-circuited resonance frequency and the open-circuited anti-resonance frequency. These findings provide guidelines to design and optimize the piezoelectric stack transducers, which have promising potential in developing the multi-frequency Langevin transducers for some underwater sound and ultrasonic applications, such as ultrasonic cleaning, ultrasonic chemistry, and sonar radiators.

Funder

fundamental research funds for the central universities

National Natural Science Foundation of China

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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