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Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device

A vibration-based bridge scour detection procedure using a cantilever-based piezoelectric energy harvesting device (EHD) is proposed here. This has an advantage over an accelerometer-based method in that potentially, the requirement for a power source can be negated with the only power requirement b...

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Autores principales: Fitzgerald, Paul C., Malekjafarian, Abdollah, Bhowmik, Basuraj, Prendergast, Luke J., Cahill, Paul, Kim, Chul-Woo, Hazra, Budhaditya, Pakrashi, Vikram, OBrien, Eugene J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6603594/
https://www.ncbi.nlm.nih.gov/pubmed/31174260
http://dx.doi.org/10.3390/s19112572
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author Fitzgerald, Paul C.
Malekjafarian, Abdollah
Bhowmik, Basuraj
Prendergast, Luke J.
Cahill, Paul
Kim, Chul-Woo
Hazra, Budhaditya
Pakrashi, Vikram
OBrien, Eugene J.
author_facet Fitzgerald, Paul C.
Malekjafarian, Abdollah
Bhowmik, Basuraj
Prendergast, Luke J.
Cahill, Paul
Kim, Chul-Woo
Hazra, Budhaditya
Pakrashi, Vikram
OBrien, Eugene J.
author_sort Fitzgerald, Paul C.
collection PubMed
description A vibration-based bridge scour detection procedure using a cantilever-based piezoelectric energy harvesting device (EHD) is proposed here. This has an advantage over an accelerometer-based method in that potentially, the requirement for a power source can be negated with the only power requirement being the storage and/or transmission of the data. Ideally, this source of power could be fulfilled by the EHD itself, although much research is currently being done to explore this. The open-circuit EHD voltage is used here to detect bridge frequency shifts arising due to scour. Using one EHD attached to the central bridge pier, both scour at the pier of installation and scour at another bridge pier can be detected from the EHD voltage generated during the bridge free-vibration stage, while the harvester is attached to a healthy pier. The method would work best with an initial modal analysis of the bridge structure in order to identify frequencies that may be sensitive to scour. Frequency components corresponding to harmonic loading and electrical interference arising from experiments are removed using the filter bank property of singular spectrum analysis (SSA). These frequencies can then be monitored by using harvested voltage from the energy harvesting device and successfully utilised towards structural health monitoring of a model bridge affected by scour.
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spelling pubmed-66035942019-07-17 Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device Fitzgerald, Paul C. Malekjafarian, Abdollah Bhowmik, Basuraj Prendergast, Luke J. Cahill, Paul Kim, Chul-Woo Hazra, Budhaditya Pakrashi, Vikram OBrien, Eugene J. Sensors (Basel) Article A vibration-based bridge scour detection procedure using a cantilever-based piezoelectric energy harvesting device (EHD) is proposed here. This has an advantage over an accelerometer-based method in that potentially, the requirement for a power source can be negated with the only power requirement being the storage and/or transmission of the data. Ideally, this source of power could be fulfilled by the EHD itself, although much research is currently being done to explore this. The open-circuit EHD voltage is used here to detect bridge frequency shifts arising due to scour. Using one EHD attached to the central bridge pier, both scour at the pier of installation and scour at another bridge pier can be detected from the EHD voltage generated during the bridge free-vibration stage, while the harvester is attached to a healthy pier. The method would work best with an initial modal analysis of the bridge structure in order to identify frequencies that may be sensitive to scour. Frequency components corresponding to harmonic loading and electrical interference arising from experiments are removed using the filter bank property of singular spectrum analysis (SSA). These frequencies can then be monitored by using harvested voltage from the energy harvesting device and successfully utilised towards structural health monitoring of a model bridge affected by scour. MDPI 2019-06-06 /pmc/articles/PMC6603594/ /pubmed/31174260 http://dx.doi.org/10.3390/s19112572 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
Fitzgerald, Paul C.
Malekjafarian, Abdollah
Bhowmik, Basuraj
Prendergast, Luke J.
Cahill, Paul
Kim, Chul-Woo
Hazra, Budhaditya
Pakrashi, Vikram
OBrien, Eugene J.
Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title_full Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title_fullStr Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title_full_unstemmed Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title_short Scour Damage Detection and Structural Health Monitoring of a Laboratory-Scaled Bridge Using a Vibration Energy Harvesting Device
title_sort scour damage detection and structural health monitoring of a laboratory-scaled bridge using a vibration energy harvesting device
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6603594/
https://www.ncbi.nlm.nih.gov/pubmed/31174260
http://dx.doi.org/10.3390/s19112572
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