Magnetostrictive vibrational power generator for battery-free IoT application

This study proposes a novel vibrational power generator based on magnetostrictive material (Fe–Ga alloy) for battery-free Internet of Things (IoT) applications. The device consists of a U-shaped magnetic frame with one leg forming a unimorph comprising a bonded Fe–Ga alloy plate and magnetic materia...

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Main Author: Toshiyuki Ueno
Format: Article
Language:English
Published: AIP Publishing LLC 2019-03-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5079882
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author Toshiyuki Ueno
author_facet Toshiyuki Ueno
author_sort Toshiyuki Ueno
collection DOAJ
description This study proposes a novel vibrational power generator based on magnetostrictive material (Fe–Ga alloy) for battery-free Internet of Things (IoT) applications. The device consists of a U-shaped magnetic frame with one leg forming a unimorph comprising a bonded Fe–Ga alloy plate and magnetic material, with a coil wound over the unimorph and a permanent magnet placed between the two legs of the frame. Via magnetically saturating the part of the frame at the point where the Fe–Ga plate is bonded, an electromotive force is generated in the coil by vibrations according to the change in the magnetic flux of the Fe–Ga alloy as generated by the inverse magnetostrictive effect. The device is simple in structure, highly robust, and affords an ease of assembling that is suitable for mass production. We also evaluate a prototype device (device weight of 4 g) using an Fe–Ga plate with dimensions of 4 × 0.5 × 16 mm. With a weight of 1.7 g attached to the device, an open-circuit voltage of 4 V at an oscillation frequency of 88.7 Hz and acceleration of 6.0 m/s2 yields an effective power of 2.0 mW. With a weight of 10.2 g, an effective power of 0.39 mW is generated at a frequency of 28.4 Hz and acceleration of 0.73 m/s2. After 100 million repeated oscillations at 420 Hz and 78.4 m/s2, the resonant frequency and voltage remain unchanged. The device performance is sufficient to replace the button cell used in wireless modules. Further, in order to examine the device feasibility, I investigate two applications related to short-distance (sending ON signals) and long-distance (sending data of temperature and vibration frequency) wireless sensors driven by the proposed device.
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spelling doaj.art-e2d27e8a277f472a98c89f087ef1b51d2022-12-22T00:33:13ZengAIP Publishing LLCAIP Advances2158-32262019-03-0193035018035018-510.1063/1.5079882042992ADVMagnetostrictive vibrational power generator for battery-free IoT applicationToshiyuki Ueno0Kanazawa University, Kakuma-machi, Kanazawa, Ishikawa 920-1192, JapanThis study proposes a novel vibrational power generator based on magnetostrictive material (Fe–Ga alloy) for battery-free Internet of Things (IoT) applications. The device consists of a U-shaped magnetic frame with one leg forming a unimorph comprising a bonded Fe–Ga alloy plate and magnetic material, with a coil wound over the unimorph and a permanent magnet placed between the two legs of the frame. Via magnetically saturating the part of the frame at the point where the Fe–Ga plate is bonded, an electromotive force is generated in the coil by vibrations according to the change in the magnetic flux of the Fe–Ga alloy as generated by the inverse magnetostrictive effect. The device is simple in structure, highly robust, and affords an ease of assembling that is suitable for mass production. We also evaluate a prototype device (device weight of 4 g) using an Fe–Ga plate with dimensions of 4 × 0.5 × 16 mm. With a weight of 1.7 g attached to the device, an open-circuit voltage of 4 V at an oscillation frequency of 88.7 Hz and acceleration of 6.0 m/s2 yields an effective power of 2.0 mW. With a weight of 10.2 g, an effective power of 0.39 mW is generated at a frequency of 28.4 Hz and acceleration of 0.73 m/s2. After 100 million repeated oscillations at 420 Hz and 78.4 m/s2, the resonant frequency and voltage remain unchanged. The device performance is sufficient to replace the button cell used in wireless modules. Further, in order to examine the device feasibility, I investigate two applications related to short-distance (sending ON signals) and long-distance (sending data of temperature and vibration frequency) wireless sensors driven by the proposed device.http://dx.doi.org/10.1063/1.5079882
spellingShingle Toshiyuki Ueno
Magnetostrictive vibrational power generator for battery-free IoT application
AIP Advances
title Magnetostrictive vibrational power generator for battery-free IoT application
title_full Magnetostrictive vibrational power generator for battery-free IoT application
title_fullStr Magnetostrictive vibrational power generator for battery-free IoT application
title_full_unstemmed Magnetostrictive vibrational power generator for battery-free IoT application
title_short Magnetostrictive vibrational power generator for battery-free IoT application
title_sort magnetostrictive vibrational power generator for battery free iot application
url http://dx.doi.org/10.1063/1.5079882
work_keys_str_mv AT toshiyukiueno magnetostrictivevibrationalpowergeneratorforbatteryfreeiotapplication