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Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting

Piezoelectric Vibration converters are nowadays gaining importance for supplying low-powered sensor nodes and wearable electronic devices. Energy management interfaces are thereby needed to ensure voltage compatibility between the harvester element and the electric load. To improve power extraction...

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Autores principales: Ben Ammar, Meriam, Sahnoun, Salwa, Fakhfakh, Ahmed, Viehweger, Christian, Kanoun, Olfa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9966393/
https://www.ncbi.nlm.nih.gov/pubmed/36850428
http://dx.doi.org/10.3390/s23041830
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author Ben Ammar, Meriam
Sahnoun, Salwa
Fakhfakh, Ahmed
Viehweger, Christian
Kanoun, Olfa
author_facet Ben Ammar, Meriam
Sahnoun, Salwa
Fakhfakh, Ahmed
Viehweger, Christian
Kanoun, Olfa
author_sort Ben Ammar, Meriam
collection PubMed
description Piezoelectric Vibration converters are nowadays gaining importance for supplying low-powered sensor nodes and wearable electronic devices. Energy management interfaces are thereby needed to ensure voltage compatibility between the harvester element and the electric load. To improve power extraction ability, resonant interfaces such as Parallel Synchronized Switch Harvesting on Inductor (P-SSHI) have been proposed. The main challenges for designing this type of energy management circuits are to realise self-powered solutions and increase the energy efficiency and adaptability of the interface for low-power operation modes corresponding to low frequencies and irregular vibration mechanical energy sources. In this work, a novel Self-Powered (SP P-SSHI) energy management circuit is proposed which is able to harvest energy from piezoelectric converters at low frequencies and irregular chock like footstep input excitations. It has a good power extraction ability and is adaptable for different storage capacitors and loads. As a proof of concept, a piezoelectric shoe insole with six integrated parallel piezoelectric sensors (PEts) was designed and implemented to validate the performance of the energy management interface circuit. Under a vibration excitation of 1 Hz corresponding to a (moderate walking speed), the maximum reached efficiency and power of the proposed interface is 83.02% and 3.6 mW respectively for the designed insole, a 10 k [Formula: see text] resistive load and a 10 μF storage capacitor. The enhanced SP-PSSHI circuit was validated to charge a 10 [Formula: see text] F capacitor to 6 V in 3.94 s and a 1 mF capacitor to 3.2 V in 27.64 s. The proposed energy management interface has a cold start-up ability and was also validated to charge a (65 mAh, 3.1 V) maganese dioxide coin cell Lithium battery (ML 2032), demonstrating the ability of the proposed wearable piezoelectric energy harvesting system to provide an autonomous power supply for wearable wireless sensors.
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spelling pubmed-99663932023-02-26 Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting Ben Ammar, Meriam Sahnoun, Salwa Fakhfakh, Ahmed Viehweger, Christian Kanoun, Olfa Sensors (Basel) Article Piezoelectric Vibration converters are nowadays gaining importance for supplying low-powered sensor nodes and wearable electronic devices. Energy management interfaces are thereby needed to ensure voltage compatibility between the harvester element and the electric load. To improve power extraction ability, resonant interfaces such as Parallel Synchronized Switch Harvesting on Inductor (P-SSHI) have been proposed. The main challenges for designing this type of energy management circuits are to realise self-powered solutions and increase the energy efficiency and adaptability of the interface for low-power operation modes corresponding to low frequencies and irregular vibration mechanical energy sources. In this work, a novel Self-Powered (SP P-SSHI) energy management circuit is proposed which is able to harvest energy from piezoelectric converters at low frequencies and irregular chock like footstep input excitations. It has a good power extraction ability and is adaptable for different storage capacitors and loads. As a proof of concept, a piezoelectric shoe insole with six integrated parallel piezoelectric sensors (PEts) was designed and implemented to validate the performance of the energy management interface circuit. Under a vibration excitation of 1 Hz corresponding to a (moderate walking speed), the maximum reached efficiency and power of the proposed interface is 83.02% and 3.6 mW respectively for the designed insole, a 10 k [Formula: see text] resistive load and a 10 μF storage capacitor. The enhanced SP-PSSHI circuit was validated to charge a 10 [Formula: see text] F capacitor to 6 V in 3.94 s and a 1 mF capacitor to 3.2 V in 27.64 s. The proposed energy management interface has a cold start-up ability and was also validated to charge a (65 mAh, 3.1 V) maganese dioxide coin cell Lithium battery (ML 2032), demonstrating the ability of the proposed wearable piezoelectric energy harvesting system to provide an autonomous power supply for wearable wireless sensors. MDPI 2023-02-06 /pmc/articles/PMC9966393/ /pubmed/36850428 http://dx.doi.org/10.3390/s23041830 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ben Ammar, Meriam
Sahnoun, Salwa
Fakhfakh, Ahmed
Viehweger, Christian
Kanoun, Olfa
Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title_full Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title_fullStr Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title_full_unstemmed Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title_short Self-Powered Synchronized Switching Interface Circuit for Piezoelectric Footstep Energy Harvesting
title_sort self-powered synchronized switching interface circuit for piezoelectric footstep energy harvesting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9966393/
https://www.ncbi.nlm.nih.gov/pubmed/36850428
http://dx.doi.org/10.3390/s23041830
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