Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models

The kinetic energy of raindrops is a large and renewable source of energy that nowadays can be exploited by means of piezoelectric harvesters. This study focuses on a new cantilever harvester that uses the impact of a drop on a liquid surface created on the harvester in order to improve the conversi...

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Main Authors: Ilaria Palomba, Alberto Doria, Edoardo Marconi, Matteo Bottin, Giulio Rosati
Format: Article
Language:English
Published: MDPI AG 2022-03-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/12/7/3249
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author Ilaria Palomba
Alberto Doria
Edoardo Marconi
Matteo Bottin
Giulio Rosati
author_facet Ilaria Palomba
Alberto Doria
Edoardo Marconi
Matteo Bottin
Giulio Rosati
author_sort Ilaria Palomba
collection DOAJ
description The kinetic energy of raindrops is a large and renewable source of energy that nowadays can be exploited by means of piezoelectric harvesters. This study focuses on a new cantilever harvester that uses the impact of a drop on a liquid surface created on the harvester in order to improve the conversion from kinetic energy to electric energy. Experimental tests, carried out both outdoors and indoors, were performed to assess the validity of the proposed design. The voltage obtained with the impact on the liquid surface was about four times larger than the one obtained with the impact on a dry surface. The phenomena that lead to the increased performance of the harvester were analyzed both experimentally, by means of a high-speed camera, and analytically, by means of a mathematical model. The camera footage showed a clear relationship between the waveform of the generated voltage and the various phases of the impact (crown formation, crown collapse, and sloshing). The mathematical model developed herein, which was based on the oscillation of the liquid mass caused by the impact and on the linear momentum equation, is simple and can be used to estimate the measured voltage within a good approximation.
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spelling doaj.art-7e233505fccb4fc59bb26157385a08462023-11-30T22:53:08ZengMDPI AGApplied Sciences2076-34172022-03-01127324910.3390/app12073249Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative ModelsIlaria Palomba0Alberto Doria1Edoardo Marconi2Matteo Bottin3Giulio Rosati4Department of Industrial Engineering, University of Padova, 35131 Padova, ItalyDepartment of Industrial Engineering, University of Padova, 35131 Padova, ItalyDepartment of Industrial Engineering, University of Padova, 35131 Padova, ItalyDepartment of Industrial Engineering, University of Padova, 35131 Padova, ItalyDepartment of Industrial Engineering, University of Padova, 35131 Padova, ItalyThe kinetic energy of raindrops is a large and renewable source of energy that nowadays can be exploited by means of piezoelectric harvesters. This study focuses on a new cantilever harvester that uses the impact of a drop on a liquid surface created on the harvester in order to improve the conversion from kinetic energy to electric energy. Experimental tests, carried out both outdoors and indoors, were performed to assess the validity of the proposed design. The voltage obtained with the impact on the liquid surface was about four times larger than the one obtained with the impact on a dry surface. The phenomena that lead to the increased performance of the harvester were analyzed both experimentally, by means of a high-speed camera, and analytically, by means of a mathematical model. The camera footage showed a clear relationship between the waveform of the generated voltage and the various phases of the impact (crown formation, crown collapse, and sloshing). The mathematical model developed herein, which was based on the oscillation of the liquid mass caused by the impact and on the linear momentum equation, is simple and can be used to estimate the measured voltage within a good approximation.https://www.mdpi.com/2076-3417/12/7/3249raindrop harvesterpiezoelectricimpulse vibrations
spellingShingle Ilaria Palomba
Alberto Doria
Edoardo Marconi
Matteo Bottin
Giulio Rosati
Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
Applied Sciences
raindrop harvester
piezoelectric
impulse vibrations
title Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
title_full Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
title_fullStr Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
title_full_unstemmed Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
title_short Vibration Energy Harvesting from Raindrops Impacts: Experimental Tests and Interpretative Models
title_sort vibration energy harvesting from raindrops impacts experimental tests and interpretative models
topic raindrop harvester
piezoelectric
impulse vibrations
url https://www.mdpi.com/2076-3417/12/7/3249
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AT edoardomarconi vibrationenergyharvestingfromraindropsimpactsexperimentaltestsandinterpretativemodels
AT matteobottin vibrationenergyharvestingfromraindropsimpactsexperimentaltestsandinterpretativemodels
AT giuliorosati vibrationenergyharvestingfromraindropsimpactsexperimentaltestsandinterpretativemodels