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A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †

Real time electricity monitoring is critical to enable intelligent and customized energy management for users in residential, educational, and commercial buildings. This paper presents the design, integration, and testing of a simple, self-contained, low-power, non-invasive system at low cost applic...

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Detalles Bibliográficos
Autores principales: Yang, Zongxian, Zarabi, Sid, Fernandes, Egon, Rua-Taborda, Maria-Isabel, Debéda, Hélène, Salehian, Armaghan, Nairn, David, Wei, Lan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6263967/
https://www.ncbi.nlm.nih.gov/pubmed/30400161
http://dx.doi.org/10.3390/s18113733
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author Yang, Zongxian
Zarabi, Sid
Fernandes, Egon
Rua-Taborda, Maria-Isabel
Debéda, Hélène
Salehian, Armaghan
Nairn, David
Wei, Lan
author_facet Yang, Zongxian
Zarabi, Sid
Fernandes, Egon
Rua-Taborda, Maria-Isabel
Debéda, Hélène
Salehian, Armaghan
Nairn, David
Wei, Lan
author_sort Yang, Zongxian
collection PubMed
description Real time electricity monitoring is critical to enable intelligent and customized energy management for users in residential, educational, and commercial buildings. This paper presents the design, integration, and testing of a simple, self-contained, low-power, non-invasive system at low cost applicable for such purpose. The system is powered by piezoelectric energy harvesters (EHs) based on PZT and includes a microcontroller unit (MCU) and a central hub. Real-time information regarding the electricity consumption is measured and communicated by the system, which ultimately offers a dependable and promising solution as a wireless sensor node. The dynamic power management ensures the system to work with different types of PZT EHs at a wide range of input power. Thus, the system is robust against fluctuation of the current in the electricity grid and requires minimum adjustment if EH unit requires exchange or upgrade. Experimental results demonstrate that this unit is in a position to read and transmit 60 Hz alternating current (AC) sensor signals with a high accuracy no less than 91.4%. The system is able to achieve an operation duty cycle from <1 min up to 18 min when the current in an electric wire varies from 7.6 A to 30 A, depending on the characteristics of different EHs and intensity of current being monitored.
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spelling pubmed-62639672018-12-12 A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters † Yang, Zongxian Zarabi, Sid Fernandes, Egon Rua-Taborda, Maria-Isabel Debéda, Hélène Salehian, Armaghan Nairn, David Wei, Lan Sensors (Basel) Article Real time electricity monitoring is critical to enable intelligent and customized energy management for users in residential, educational, and commercial buildings. This paper presents the design, integration, and testing of a simple, self-contained, low-power, non-invasive system at low cost applicable for such purpose. The system is powered by piezoelectric energy harvesters (EHs) based on PZT and includes a microcontroller unit (MCU) and a central hub. Real-time information regarding the electricity consumption is measured and communicated by the system, which ultimately offers a dependable and promising solution as a wireless sensor node. The dynamic power management ensures the system to work with different types of PZT EHs at a wide range of input power. Thus, the system is robust against fluctuation of the current in the electricity grid and requires minimum adjustment if EH unit requires exchange or upgrade. Experimental results demonstrate that this unit is in a position to read and transmit 60 Hz alternating current (AC) sensor signals with a high accuracy no less than 91.4%. The system is able to achieve an operation duty cycle from <1 min up to 18 min when the current in an electric wire varies from 7.6 A to 30 A, depending on the characteristics of different EHs and intensity of current being monitored. MDPI 2018-11-02 /pmc/articles/PMC6263967/ /pubmed/30400161 http://dx.doi.org/10.3390/s18113733 Text en © 2018 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
Yang, Zongxian
Zarabi, Sid
Fernandes, Egon
Rua-Taborda, Maria-Isabel
Debéda, Hélène
Salehian, Armaghan
Nairn, David
Wei, Lan
A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title_full A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title_fullStr A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title_full_unstemmed A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title_short A Simple Wireless Sensor Node System for Electricity Monitoring Applications: Design, Integration, and Testing with Different Piezoelectric Energy Harvesters †
title_sort simple wireless sensor node system for electricity monitoring applications: design, integration, and testing with different piezoelectric energy harvesters †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6263967/
https://www.ncbi.nlm.nih.gov/pubmed/30400161
http://dx.doi.org/10.3390/s18113733
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