Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators

The human-powered self-generator provides the best solution for individuals who need an instantaneous power supply for travel, outdoor, and emergency use, since it is less dependent on weather conditions and occupies less space than other renewable power supplies. However, many commercial portable s...

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Main Authors: Jeongjin Yeo, Mun-ho Ryu, Yoonseok Yang
Format: Article
Language:English
Published: MDPI AG 2015-07-01
Series:Sensors
Subjects:
Online Access:http://www.mdpi.com/1424-8220/15/7/15853
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spelling doaj-a96a80d4f25d419b99207686e556dd4d2020-11-24T22:49:51ZengMDPI AGSensors1424-82202015-07-01157158531586710.3390/s150715853s150715853Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered GeneratorsJeongjin Yeo0Mun-ho Ryu1Yoonseok Yang2Healthcare Engineering, Chonbuk National University, Deokjin-dong Jeonju 664-14, KoreaBiomedical Engineering, Chonbuk National University, Deokjin-dong Jeonju 664-14, KoreaBiomedical Engineering, Chonbuk National University, Deokjin-dong Jeonju 664-14, KoreaThe human-powered self-generator provides the best solution for individuals who need an instantaneous power supply for travel, outdoor, and emergency use, since it is less dependent on weather conditions and occupies less space than other renewable power supplies. However, many commercial portable self-generators that employ hand-cranking are not used as much as expected in daily lives although they have enough output capacity due to their intensive workload. This study proposes a portable human-powered generator which is designed to obtain mechanical energy from an upper limb pulling motion for improved human motion economy as well as efficient human-mechanical power transfer. A coreless axial-flux permanent magnet machine (APMM) and a flywheel magnet rotor were used in conjunction with a one-way clutched power transmission system in order to obtain effective power from the pulling motion. The developed prototype showed an average energy conversion efficiency of 30.98% and an average output power of 0.32 W with a maximum of 1.89 W. Its small form factor (50 mm × 32 mm × 43.5 mm, 0.05 kg) and the substantial electricity produced verify the effectiveness of the proposed method in the utilization of human power. It is expected that the developed generator could provide a mobile power supply.http://www.mdpi.com/1424-8220/15/7/15853human-powered generatorpulling energy harvesterhuman kineticsflywheel magnet rotorcoreless coil
collection DOAJ
language English
format Article
sources DOAJ
author Jeongjin Yeo
Mun-ho Ryu
Yoonseok Yang
spellingShingle Jeongjin Yeo
Mun-ho Ryu
Yoonseok Yang
Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
Sensors
human-powered generator
pulling energy harvester
human kinetics
flywheel magnet rotor
coreless coil
author_facet Jeongjin Yeo
Mun-ho Ryu
Yoonseok Yang
author_sort Jeongjin Yeo
title Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
title_short Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
title_full Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
title_fullStr Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
title_full_unstemmed Energy Harvesting from Upper-Limb Pulling Motions for Miniaturized Human-Powered Generators
title_sort energy harvesting from upper-limb pulling motions for miniaturized human-powered generators
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2015-07-01
description The human-powered self-generator provides the best solution for individuals who need an instantaneous power supply for travel, outdoor, and emergency use, since it is less dependent on weather conditions and occupies less space than other renewable power supplies. However, many commercial portable self-generators that employ hand-cranking are not used as much as expected in daily lives although they have enough output capacity due to their intensive workload. This study proposes a portable human-powered generator which is designed to obtain mechanical energy from an upper limb pulling motion for improved human motion economy as well as efficient human-mechanical power transfer. A coreless axial-flux permanent magnet machine (APMM) and a flywheel magnet rotor were used in conjunction with a one-way clutched power transmission system in order to obtain effective power from the pulling motion. The developed prototype showed an average energy conversion efficiency of 30.98% and an average output power of 0.32 W with a maximum of 1.89 W. Its small form factor (50 mm × 32 mm × 43.5 mm, 0.05 kg) and the substantial electricity produced verify the effectiveness of the proposed method in the utilization of human power. It is expected that the developed generator could provide a mobile power supply.
topic human-powered generator
pulling energy harvester
human kinetics
flywheel magnet rotor
coreless coil
url http://www.mdpi.com/1424-8220/15/7/15853
work_keys_str_mv AT jeongjinyeo energyharvestingfromupperlimbpullingmotionsforminiaturizedhumanpoweredgenerators
AT munhoryu energyharvestingfromupperlimbpullingmotionsforminiaturizedhumanpoweredgenerators
AT yoonseokyang energyharvestingfromupperlimbpullingmotionsforminiaturizedhumanpoweredgenerators
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