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Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor

We report remote strain and displacement measurement during elastic and plastic deformation using a metamaterial-based wireless and passive sensor. The sensor is made of a comb-like nested split ring resonator (NSRR) probe operating in the near-field of an antenna, which functions as both the transm...

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Autores principales: Ozbey, Burak, Demir, Hilmi Volkan, Kurc, Ozgur, Erturk, Vakur B., Altintas, Ayhan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4239889/
https://www.ncbi.nlm.nih.gov/pubmed/25333292
http://dx.doi.org/10.3390/s141019609
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author Ozbey, Burak
Demir, Hilmi Volkan
Kurc, Ozgur
Erturk, Vakur B.
Altintas, Ayhan
author_facet Ozbey, Burak
Demir, Hilmi Volkan
Kurc, Ozgur
Erturk, Vakur B.
Altintas, Ayhan
author_sort Ozbey, Burak
collection PubMed
description We report remote strain and displacement measurement during elastic and plastic deformation using a metamaterial-based wireless and passive sensor. The sensor is made of a comb-like nested split ring resonator (NSRR) probe operating in the near-field of an antenna, which functions as both the transmitter and the receiver. The NSRR probe is fixed on a standard steel reinforcing bar (rebar), and its frequency response is monitored telemetrically by a network analyzer connected to the antenna across the whole stress-strain curve. This wireless measurement includes both the elastic and plastic region deformation together for the first time, where wired technologies, like strain gauges, typically fail to capture. The experiments are further repeated in the presence of a concrete block between the antenna and the probe, and it is shown that the sensing system is capable of functioning through the concrete. The comparison of the wireless sensor measurement with those undertaken using strain gauges and extensometers reveals that the sensor is able to measure both the average strain and the relative displacement on the rebar as a result of the applied force in a considerably accurate way. The performance of the sensor is tested for different types of misalignments that can possibly occur due to the acting force. These results indicate that the metamaterial-based sensor holds great promise for its accurate, robust and wireless measurement of the elastic and plastic deformation of a rebar, providing beneficial information for remote structural health monitoring and post-earthquake damage assessment.
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spelling pubmed-42398892014-11-21 Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor Ozbey, Burak Demir, Hilmi Volkan Kurc, Ozgur Erturk, Vakur B. Altintas, Ayhan Sensors (Basel) Article We report remote strain and displacement measurement during elastic and plastic deformation using a metamaterial-based wireless and passive sensor. The sensor is made of a comb-like nested split ring resonator (NSRR) probe operating in the near-field of an antenna, which functions as both the transmitter and the receiver. The NSRR probe is fixed on a standard steel reinforcing bar (rebar), and its frequency response is monitored telemetrically by a network analyzer connected to the antenna across the whole stress-strain curve. This wireless measurement includes both the elastic and plastic region deformation together for the first time, where wired technologies, like strain gauges, typically fail to capture. The experiments are further repeated in the presence of a concrete block between the antenna and the probe, and it is shown that the sensing system is capable of functioning through the concrete. The comparison of the wireless sensor measurement with those undertaken using strain gauges and extensometers reveals that the sensor is able to measure both the average strain and the relative displacement on the rebar as a result of the applied force in a considerably accurate way. The performance of the sensor is tested for different types of misalignments that can possibly occur due to the acting force. These results indicate that the metamaterial-based sensor holds great promise for its accurate, robust and wireless measurement of the elastic and plastic deformation of a rebar, providing beneficial information for remote structural health monitoring and post-earthquake damage assessment. MDPI 2014-10-20 /pmc/articles/PMC4239889/ /pubmed/25333292 http://dx.doi.org/10.3390/s141019609 Text en © 2014 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 license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ozbey, Burak
Demir, Hilmi Volkan
Kurc, Ozgur
Erturk, Vakur B.
Altintas, Ayhan
Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title_full Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title_fullStr Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title_full_unstemmed Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title_short Wireless Measurement of Elastic and Plastic Deformation by a Metamaterial-Based Sensor
title_sort wireless measurement of elastic and plastic deformation by a metamaterial-based sensor
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4239889/
https://www.ncbi.nlm.nih.gov/pubmed/25333292
http://dx.doi.org/10.3390/s141019609
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