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Finite element analysis of double resonance bender disk low frequency transducer

机译:双谐振弯剂磁盘低频传感器有限元分析

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摘要

A bender disk transducer can generate low-frequency sound in a small size and light weight. But traditional bender disk transducer only works at single frequency by using first order bending mode and emits moderate levels of power. In this work, a double resonance bander disk low frequency transducer is investigated by using finite element model. The double resonance bender disk transducer consists of two segmented 3-3 mode piezoelectric ceramic disk on the both side of hollow metal disc, which could generate larger displacement in order to increase power radiation. A simple elastic mass system placed inside the hollow metal disc is introduced in the system to produce other lower resonance modes. Through the FEM calculations, it is found that the transmitting voltage response (TVR) of bender disk transducer could enhance 4dB in the first order bending mode resonance frequency, which is compared with traditional bender disk transducer with the same size. The TVR of lower resonance mode which is produced by additional central simple support elastic mass system in segmented bender disk transducer is more than 130dB. Through the optimization of finite element simulation, a double resonance bender disk transducer is designed, and its resonance frequency is 600Hz and 1kHz, respectively. The value of TVR is 130dB and 134dB corresponding to two resonance frequency. The double resonance bender disk transducer is compact dimension, low weight and it is a high performance low frequency transducer.
机译:弯曲磁盘传感器可以在小尺寸和重量轻的小频率发出低频声音。但传统的弯曲磁盘传感器通过使用第一阶弯曲模式并发出适中的电源。在这项工作中,通过使用有限元模型来研究双谐振带盘低频传感器。双谐振弯剂盘换能器由中空金属盘的两侧的两个分段3-3模式压电陶瓷盘组成,其可以产生更大的位移以增加功率辐射。在系统中引入放置在中空金属盘内部的简单弹性质量系统,以产生其他较低的共振模式。通过FEM计算,发现弯管盘换能器的发射电压响应(TVR)可以在第一阶弯曲模式谐振频率中增强4dB,这与具有相同尺寸的传统弯管盘换能器进行比较。由额外的中央简单支撑弹性质量系统生产的较低谐振模式的TVR在分段的弯曲盘换能器中产生超过130dB。通过有限元模拟的优化,设计了双共振弯曲盘换能器,其共振频率分别为600Hz和1kHz。 TVR的值是130dB和134dB对应于两个共振频率。双共振弯剂盘传感器是紧凑的尺寸,重量低,它是一种高性能的低频传感器。

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  • 作者

    Wei Lu; Yu Lan; Tianfang Zhou;

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  • 年度 2019
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  • 原文格式 PDF
  • 正文语种 fra/fre;eng
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