Trident-shaped multimodal piezoelectric energy harvester

Energy harvesting from ambient vibrations using piezoelectric materials has garnered much research focus over the years due to its immense potential to replace/recharge batteries in wireless sensor nodes and low-power-consuming autonomous electronic devices. Practical implementation of conventional...

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Main Authors: Upadrashta, Deepesh, Yang, Yaowen
Other Authors: School of Civil and Environmental Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/139542
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1395422020-05-20T04:56:45Z Trident-shaped multimodal piezoelectric energy harvester Upadrashta, Deepesh Yang, Yaowen School of Civil and Environmental Engineering Engineering::Civil engineering Multimodal Harvester Piezoelectric Energy harvesting from ambient vibrations using piezoelectric materials has garnered much research focus over the years due to its immense potential to replace/recharge batteries in wireless sensor nodes and low-power-consuming autonomous electronic devices. Practical implementation of conventional linear piezoelectric energy harvesters is not an effective solution because they suffer from narrow operational bandwidth due to their single resonant peak response in frequency spectrum. Several techniques, such as oscillator arrays, passive/active resonant tuning, and nonlinear methods, have been proposed to broaden the bandwidth of harvesters. This paper proposes a novel trident (three-pronged spear) shaped multimodal (three degrees of freedom) piezoelectric energy harvester to harness electrical energy from wideband, low-frequency, and low-amplitude ambient vibrations. A single patch of piezoelectric material is used for power generation from multiple modes of the structure. The harvester structure consists of a primary cantilever beam with a patch of macrofiber composite bonded on it and three branched beams with tip masses attached to the free end of the primary beam. The first three bending modes of the harvester are used for power generation. The proposed harvester can be designed to operate in the frequency range of the target vibration source. A parametric study varying the geometric parameters of the harvester is conducted using ANSYS finite-element analysis software to obtain the three resonant peaks in the 15-20 Hz bandwidth. The prototype of multimodal harvester is fabricated in accordance with the parametric study and tested under harmonic and random excitations. When tested at 0.2grms harmonic excitation, the harvester generates 3738, 47, and 123 μW at the three resonant peaks. When tested under random excitation, the harvester accumulates sufficient energy in a capacitor to support a low-power standalone wireless sensing unit. 2020-05-20T04:56:45Z 2020-05-20T04:56:45Z 2018 Journal Article Upadrashta, D., & Yang, Y. (2018). Trident-shaped multimodal piezoelectric energy harvester. Journal of Aerospace Engineering, 31(5), 04018070-. doi:10.1061/(ASCE)AS.1943-5525.0000899 0893-1321 https://hdl.handle.net/10356/139542 10.1061/(ASCE)AS.1943-5525.0000899 2-s2.0-85049071975 5 31 en Journal of Aerospace Engineering © 2018 American Society of Civil Engineers. All rights reserved.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic Engineering::Civil engineering
Multimodal Harvester
Piezoelectric
spellingShingle Engineering::Civil engineering
Multimodal Harvester
Piezoelectric
Upadrashta, Deepesh
Yang, Yaowen
Trident-shaped multimodal piezoelectric energy harvester
description Energy harvesting from ambient vibrations using piezoelectric materials has garnered much research focus over the years due to its immense potential to replace/recharge batteries in wireless sensor nodes and low-power-consuming autonomous electronic devices. Practical implementation of conventional linear piezoelectric energy harvesters is not an effective solution because they suffer from narrow operational bandwidth due to their single resonant peak response in frequency spectrum. Several techniques, such as oscillator arrays, passive/active resonant tuning, and nonlinear methods, have been proposed to broaden the bandwidth of harvesters. This paper proposes a novel trident (three-pronged spear) shaped multimodal (three degrees of freedom) piezoelectric energy harvester to harness electrical energy from wideband, low-frequency, and low-amplitude ambient vibrations. A single patch of piezoelectric material is used for power generation from multiple modes of the structure. The harvester structure consists of a primary cantilever beam with a patch of macrofiber composite bonded on it and three branched beams with tip masses attached to the free end of the primary beam. The first three bending modes of the harvester are used for power generation. The proposed harvester can be designed to operate in the frequency range of the target vibration source. A parametric study varying the geometric parameters of the harvester is conducted using ANSYS finite-element analysis software to obtain the three resonant peaks in the 15-20 Hz bandwidth. The prototype of multimodal harvester is fabricated in accordance with the parametric study and tested under harmonic and random excitations. When tested at 0.2grms harmonic excitation, the harvester generates 3738, 47, and 123 μW at the three resonant peaks. When tested under random excitation, the harvester accumulates sufficient energy in a capacitor to support a low-power standalone wireless sensing unit.
author2 School of Civil and Environmental Engineering
author_facet School of Civil and Environmental Engineering
Upadrashta, Deepesh
Yang, Yaowen
format Article
author Upadrashta, Deepesh
Yang, Yaowen
author_sort Upadrashta, Deepesh
title Trident-shaped multimodal piezoelectric energy harvester
title_short Trident-shaped multimodal piezoelectric energy harvester
title_full Trident-shaped multimodal piezoelectric energy harvester
title_fullStr Trident-shaped multimodal piezoelectric energy harvester
title_full_unstemmed Trident-shaped multimodal piezoelectric energy harvester
title_sort trident-shaped multimodal piezoelectric energy harvester
publishDate 2020
url https://hdl.handle.net/10356/139542
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