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Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate

A novel piezoceramic stack-based smart aggregate (PiSSA) with piezoceramic wafers in series or parallel connection is developed to increase the efficiency and output performance over the conventional smart aggregate with only one piezoelectric patch. Due to the improvement, PiSSA is suitable for sit...

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Autores principales: Lu, Guangtao, Zhu, Xin, Wang, Tao, Hao, Zhiqiang, Tan, Bohai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696589/
https://www.ncbi.nlm.nih.gov/pubmed/33187213
http://dx.doi.org/10.3390/s20226438
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author Lu, Guangtao
Zhu, Xin
Wang, Tao
Hao, Zhiqiang
Tan, Bohai
author_facet Lu, Guangtao
Zhu, Xin
Wang, Tao
Hao, Zhiqiang
Tan, Bohai
author_sort Lu, Guangtao
collection PubMed
description A novel piezoceramic stack-based smart aggregate (PiSSA) with piezoceramic wafers in series or parallel connection is developed to increase the efficiency and output performance over the conventional smart aggregate with only one piezoelectric patch. Due to the improvement, PiSSA is suitable for situations where the stress waves easily attenuate. In PiSSA, the piezoelectric wafers are electrically connected in series or parallel, and three types of piezoelectric wafers with different electrode patterns are designed for easy connection. Based on the theory of piezo-elasticity, a simplified one-dimensional model is derived to study the electromechanical, transmitting and sensing performance of PiSSAs with the wafers in series and parallel connection, and the model was verified by experiments. The theoretical results reveal that the first resonance frequency of PiSSAs in series and parallel decreases as the number or thickness of the PZT wafers increases, and the first electromechanical coupling factor increases firstly and then decrease gradually as the number or thickness increases. The results also show that both the first resonance frequency and the first electromechanical coupling factor of PiSSA in series and parallel change no more than 0.87% as the Young’s modulus of the epoxy increases from 0.5 to 1.5 times 3.2 GPa, which is helpful for the fabrication of PiSSAs. In addition, the displacement output of PiSSAs in parallel is about 2.18–22.49 times that in series at 1–50 kHz, while the voltage output of PiSSAs in parallel is much less than that in parallel, which indicates that PiSSA in parallel is much more suitable for working as an actuator to excite stress waves and PiSSA in series is suitable for working as a sensor to detect the waves. All the results demonstrate that the connecting type, number and thickness of the PZT wafers should be carefully selected to increase the efficiency and output of PiSSA actuators and sensors. This study contributes to providing a method to investigate the characteristics and optimize the structural parameters of the proposed PiSSAs.
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spelling pubmed-76965892020-11-29 Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate Lu, Guangtao Zhu, Xin Wang, Tao Hao, Zhiqiang Tan, Bohai Sensors (Basel) Article A novel piezoceramic stack-based smart aggregate (PiSSA) with piezoceramic wafers in series or parallel connection is developed to increase the efficiency and output performance over the conventional smart aggregate with only one piezoelectric patch. Due to the improvement, PiSSA is suitable for situations where the stress waves easily attenuate. In PiSSA, the piezoelectric wafers are electrically connected in series or parallel, and three types of piezoelectric wafers with different electrode patterns are designed for easy connection. Based on the theory of piezo-elasticity, a simplified one-dimensional model is derived to study the electromechanical, transmitting and sensing performance of PiSSAs with the wafers in series and parallel connection, and the model was verified by experiments. The theoretical results reveal that the first resonance frequency of PiSSAs in series and parallel decreases as the number or thickness of the PZT wafers increases, and the first electromechanical coupling factor increases firstly and then decrease gradually as the number or thickness increases. The results also show that both the first resonance frequency and the first electromechanical coupling factor of PiSSA in series and parallel change no more than 0.87% as the Young’s modulus of the epoxy increases from 0.5 to 1.5 times 3.2 GPa, which is helpful for the fabrication of PiSSAs. In addition, the displacement output of PiSSAs in parallel is about 2.18–22.49 times that in series at 1–50 kHz, while the voltage output of PiSSAs in parallel is much less than that in parallel, which indicates that PiSSA in parallel is much more suitable for working as an actuator to excite stress waves and PiSSA in series is suitable for working as a sensor to detect the waves. All the results demonstrate that the connecting type, number and thickness of the PZT wafers should be carefully selected to increase the efficiency and output of PiSSA actuators and sensors. This study contributes to providing a method to investigate the characteristics and optimize the structural parameters of the proposed PiSSAs. MDPI 2020-11-11 /pmc/articles/PMC7696589/ /pubmed/33187213 http://dx.doi.org/10.3390/s20226438 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Guangtao
Zhu, Xin
Wang, Tao
Hao, Zhiqiang
Tan, Bohai
Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title_full Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title_fullStr Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title_full_unstemmed Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title_short Design and Analysis of a Novel Piezoceramic Stack-based Smart Aggregate
title_sort design and analysis of a novel piezoceramic stack-based smart aggregate
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7696589/
https://www.ncbi.nlm.nih.gov/pubmed/33187213
http://dx.doi.org/10.3390/s20226438
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