Charging device for wearable electromagnetic energy-harvesting textiles

Abstract The study aims to develop charging devices for wearable electromagnetic energy harvesting textiles (WEHT). Electromagnetic energy through human movement can be easily and naturally generated and is not significantly affected by environmental factors, however, the electric current generated...

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Main Authors: Hyewon Lee, Jung-Sim Roh
Format: Article
Language:English
Published: SpringerOpen 2021-01-01
Series:Fashion and Textiles
Subjects:
Online Access:https://doi.org/10.1186/s40691-020-00233-6
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spelling doaj-0cc5cd53bcb646368c221fb2b0f0302b2021-01-17T12:16:41ZengSpringerOpenFashion and Textiles2198-08022021-01-018111010.1186/s40691-020-00233-6Charging device for wearable electromagnetic energy-harvesting textilesHyewon Lee0Jung-Sim Roh1Associate Professor, Dept. of Home Economics Education, Korea UniversityAssociate Professor, Dept. of Fashion & Textiles, Sangmyung UniversityAbstract The study aims to develop charging devices for wearable electromagnetic energy harvesting textiles (WEHT). Electromagnetic energy through human movement can be easily and naturally generated and is not significantly affected by environmental factors, however, the electric current generated by the electromagnetic method of human movement is difficult to efficiently charge. Three charging circuits for use with wearable electromagnetic energy-harvesting textiles were developed. The three types of charging circuits developed are rectifier, voltage doubler, and voltage quadrupler circuits. The performances of the developed circuits were evaluated in comparison with a normal storage circuit, in which the generated energy is stored immediately. The results show that storage energy was generated from the WEHT in all the developed circuits, and the charging efficiency improved as the simulated walking frequency increased. Energy generated from wearable electromagnetic energy harvesting textiles has the highest storage efficiency when charged with a rectifier circuit. The rectifying circuit method showed a charging rate twice that of a normal storage circuit. The charging speed of the rectifier circuit was faster to reach 3.7 V, the nominal maximum barrier voltage of the single-cell lithium-ion batteries used in portable devices, than the normal charging circuit. In the voltage multiplier circuit, the voltage drop generated in the circuit was large, so the charging efficiency was not superior to the normal circuit or rectifier circuit. In conclusion, it is most effective to use a rectifier circuit for charging portable electronic devices using the energy harvested by wearable electromagnetic energy harvesting textiles.https://doi.org/10.1186/s40691-020-00233-6Charging deviceRectifierVoltage multiplierBatteryWearable energy harvesting textile
collection DOAJ
language English
format Article
sources DOAJ
author Hyewon Lee
Jung-Sim Roh
spellingShingle Hyewon Lee
Jung-Sim Roh
Charging device for wearable electromagnetic energy-harvesting textiles
Fashion and Textiles
Charging device
Rectifier
Voltage multiplier
Battery
Wearable energy harvesting textile
author_facet Hyewon Lee
Jung-Sim Roh
author_sort Hyewon Lee
title Charging device for wearable electromagnetic energy-harvesting textiles
title_short Charging device for wearable electromagnetic energy-harvesting textiles
title_full Charging device for wearable electromagnetic energy-harvesting textiles
title_fullStr Charging device for wearable electromagnetic energy-harvesting textiles
title_full_unstemmed Charging device for wearable electromagnetic energy-harvesting textiles
title_sort charging device for wearable electromagnetic energy-harvesting textiles
publisher SpringerOpen
series Fashion and Textiles
issn 2198-0802
publishDate 2021-01-01
description Abstract The study aims to develop charging devices for wearable electromagnetic energy harvesting textiles (WEHT). Electromagnetic energy through human movement can be easily and naturally generated and is not significantly affected by environmental factors, however, the electric current generated by the electromagnetic method of human movement is difficult to efficiently charge. Three charging circuits for use with wearable electromagnetic energy-harvesting textiles were developed. The three types of charging circuits developed are rectifier, voltage doubler, and voltage quadrupler circuits. The performances of the developed circuits were evaluated in comparison with a normal storage circuit, in which the generated energy is stored immediately. The results show that storage energy was generated from the WEHT in all the developed circuits, and the charging efficiency improved as the simulated walking frequency increased. Energy generated from wearable electromagnetic energy harvesting textiles has the highest storage efficiency when charged with a rectifier circuit. The rectifying circuit method showed a charging rate twice that of a normal storage circuit. The charging speed of the rectifier circuit was faster to reach 3.7 V, the nominal maximum barrier voltage of the single-cell lithium-ion batteries used in portable devices, than the normal charging circuit. In the voltage multiplier circuit, the voltage drop generated in the circuit was large, so the charging efficiency was not superior to the normal circuit or rectifier circuit. In conclusion, it is most effective to use a rectifier circuit for charging portable electronic devices using the energy harvested by wearable electromagnetic energy harvesting textiles.
topic Charging device
Rectifier
Voltage multiplier
Battery
Wearable energy harvesting textile
url https://doi.org/10.1186/s40691-020-00233-6
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