Acoustic Matching Characteristics of Annular Piezoelectric Ultrasonic Sensor

IF 0.6 4区 物理与天体物理 Q4 ACOUSTICS
Li Haoran, H. Yan, LI Laibo, X. Dongyu
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引用次数: 0

Abstract

Using intelligent materials and sensors to monitor the safety of concrete structures is a hot topic in the field of civil engineering. In order to realize the omni-directional monitoring of concrete structural damage, the authors of this paper designed and fabricated an embedded annular piezoelectric ultrasonic sensor using the annular piezoelectric lead zirconate titanate (PZT) ceramic as a sensing element and epoxy resin as the matching and the backing layers. The influence of different matching and backing layers thickness on the acoustic characteristic parameters of the sensor were studied. The results show that the resonant frequency corresponding to the axial mode of annular piezoelectric ceramics moves toward the high frequency direction with the decrease of the height of piezoelectric ceramics, and the radial vibration mode increases as well as the impedance peak. With the thickness of the backing layer increases from 1 mm to 2 mm, the radial resolution of the annular piezoelectric ultrasonic sensor is enhanced, the pulse width is reduced by 39% comparing with the sensors which backing layer is 1 mm, and the head wave amplitude and − 3 dB bandwidth are increased by 61% and 66%, respectively. When the matching layer thickness is 3 mm, the sensor has the highest amplitude response of 269 mV and higher sensitivity.
环形压电超声传感器的声学匹配特性
利用智能材料和传感器对混凝土结构进行安全监测是土木工程领域的研究热点。为了实现对混凝土结构损伤的全方位监测,本文以压电锆钛酸铅(PZT)陶瓷为传感元件,环氧树脂为配衬层和衬底,设计制作了一种嵌入式环形压电超声传感器。研究了不同匹配层和衬底层厚度对传感器声学特性参数的影响。结果表明:随着压电陶瓷高度的降低,环形压电陶瓷轴向振动模态对应的谐振频率向高频方向移动,径向振动模态增加,阻抗峰值增大;当衬底厚度从1 mm增加到2 mm时,环形压电超声传感器的径向分辨率提高,脉冲宽度比衬底厚度为1 mm的传感器减小39%,头波振幅和- 3 dB带宽分别增加61%和66%。当匹配层厚度为3 mm时,传感器的最大幅值响应为269 mV,灵敏度更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archives of Acoustics
Archives of Acoustics 物理-声学
CiteScore
1.80
自引率
11.10%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Archives of Acoustics, the peer-reviewed quarterly journal publishes original research papers from all areas of acoustics like: acoustical measurements and instrumentation, acoustics of musics, acousto-optics, architectural, building and environmental acoustics, bioacoustics, electroacoustics, linear and nonlinear acoustics, noise and vibration, physical and chemical effects of sound, physiological acoustics, psychoacoustics, quantum acoustics, speech processing and communication systems, speech production and perception, transducers, ultrasonics, underwater acoustics.
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