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A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting

Designing a piezoelectric energy harvester (PEH) with high power density and high fatigue resistance is essential for the successful replacement of the currently using batteries in structural health monitoring (SHM) systems. Among the various designs, the PEH comprising of a cantilever structure as...

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Autores principales: Peddigari, Mahesh, Kim, Ga-Yeon, Park, Chan Hee, Min, Yuho, Kim, Jong-Woo, Ahn, Cheol-Woo, Choi, Jong-Jin, Hahn, Byung-Dong, Choi, Joon-Hwan, Park, Dong-Soo, Hong, Jae-Keun, Yeom, Jong-Taek, Park, Kwi-Il, Jeong, Dae-Yong, Yoon, Woon-Ha, Ryu, Jungho, Hwang, Geon-Tae
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539409/
https://www.ncbi.nlm.nih.gov/pubmed/31085985
http://dx.doi.org/10.3390/s19092196
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author Peddigari, Mahesh
Kim, Ga-Yeon
Park, Chan Hee
Min, Yuho
Kim, Jong-Woo
Ahn, Cheol-Woo
Choi, Jong-Jin
Hahn, Byung-Dong
Choi, Joon-Hwan
Park, Dong-Soo
Hong, Jae-Keun
Yeom, Jong-Taek
Park, Kwi-Il
Jeong, Dae-Yong
Yoon, Woon-Ha
Ryu, Jungho
Hwang, Geon-Tae
author_facet Peddigari, Mahesh
Kim, Ga-Yeon
Park, Chan Hee
Min, Yuho
Kim, Jong-Woo
Ahn, Cheol-Woo
Choi, Jong-Jin
Hahn, Byung-Dong
Choi, Joon-Hwan
Park, Dong-Soo
Hong, Jae-Keun
Yeom, Jong-Taek
Park, Kwi-Il
Jeong, Dae-Yong
Yoon, Woon-Ha
Ryu, Jungho
Hwang, Geon-Tae
author_sort Peddigari, Mahesh
collection PubMed
description Designing a piezoelectric energy harvester (PEH) with high power density and high fatigue resistance is essential for the successful replacement of the currently using batteries in structural health monitoring (SHM) systems. Among the various designs, the PEH comprising of a cantilever structure as a passive layer and piezoelectric single crystal-based fiber composites (SFC) as an active layer showed excellent performance due to its high electromechanical properties and dynamic flexibilities that are suitable for low frequency vibrations. In the present study, an effort was made to investigate the reliable performance of hard and soft SFC based PEHs. The base acceleration of both PEHs is held at 7 m/s(2) and the frequency of excitation is tuned to their resonant frequency (f(r)) and then the output power (P(rms)) is monitored for 10(7) fatigue cycles. The effect of fatigue cycles on the output voltage, vibration displacement, dielectric, and ferroelectric properties of PEHs was analyzed. It was noticed that fatigue-induced performance degradation is more prominent in soft SFC-based PEH (SS-PEH) than in hard SFC-based PEH (HS-PEH). The HS-PEH showed a slight degradation in the output power due to a shift in f(r), however, no degradation in the maximum power was noticed, in fact, dielectric and ferroelectric properties were improved even after 10(7) vibration cycles. In this context, the present study provides a pathway to consider the fatigue life of piezoelectric material for the designing of PEH to be used at resonant conditions for long-term operation.
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spelling pubmed-65394092019-06-04 A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting Peddigari, Mahesh Kim, Ga-Yeon Park, Chan Hee Min, Yuho Kim, Jong-Woo Ahn, Cheol-Woo Choi, Jong-Jin Hahn, Byung-Dong Choi, Joon-Hwan Park, Dong-Soo Hong, Jae-Keun Yeom, Jong-Taek Park, Kwi-Il Jeong, Dae-Yong Yoon, Woon-Ha Ryu, Jungho Hwang, Geon-Tae Sensors (Basel) Article Designing a piezoelectric energy harvester (PEH) with high power density and high fatigue resistance is essential for the successful replacement of the currently using batteries in structural health monitoring (SHM) systems. Among the various designs, the PEH comprising of a cantilever structure as a passive layer and piezoelectric single crystal-based fiber composites (SFC) as an active layer showed excellent performance due to its high electromechanical properties and dynamic flexibilities that are suitable for low frequency vibrations. In the present study, an effort was made to investigate the reliable performance of hard and soft SFC based PEHs. The base acceleration of both PEHs is held at 7 m/s(2) and the frequency of excitation is tuned to their resonant frequency (f(r)) and then the output power (P(rms)) is monitored for 10(7) fatigue cycles. The effect of fatigue cycles on the output voltage, vibration displacement, dielectric, and ferroelectric properties of PEHs was analyzed. It was noticed that fatigue-induced performance degradation is more prominent in soft SFC-based PEH (SS-PEH) than in hard SFC-based PEH (HS-PEH). The HS-PEH showed a slight degradation in the output power due to a shift in f(r), however, no degradation in the maximum power was noticed, in fact, dielectric and ferroelectric properties were improved even after 10(7) vibration cycles. In this context, the present study provides a pathway to consider the fatigue life of piezoelectric material for the designing of PEH to be used at resonant conditions for long-term operation. MDPI 2019-05-13 /pmc/articles/PMC6539409/ /pubmed/31085985 http://dx.doi.org/10.3390/s19092196 Text en © 2019 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
Peddigari, Mahesh
Kim, Ga-Yeon
Park, Chan Hee
Min, Yuho
Kim, Jong-Woo
Ahn, Cheol-Woo
Choi, Jong-Jin
Hahn, Byung-Dong
Choi, Joon-Hwan
Park, Dong-Soo
Hong, Jae-Keun
Yeom, Jong-Taek
Park, Kwi-Il
Jeong, Dae-Yong
Yoon, Woon-Ha
Ryu, Jungho
Hwang, Geon-Tae
A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title_full A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title_fullStr A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title_full_unstemmed A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title_short A Comparison Study of Fatigue Behavior of Hard and Soft Piezoelectric Single Crystal Macro-Fiber Composites for Vibration Energy Harvesting
title_sort comparison study of fatigue behavior of hard and soft piezoelectric single crystal macro-fiber composites for vibration energy harvesting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539409/
https://www.ncbi.nlm.nih.gov/pubmed/31085985
http://dx.doi.org/10.3390/s19092196
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