Cargando…

Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode

This paper proposes an approach for designing an efficient vibration energy harvester based on a vibro-impacting piezoelectric microcantilever with a geometric shape that has been rationally modified in accordance with results of dynamic optimization. The design goal is to increase the amplitudes of...

Descripción completa

Detalles Bibliográficos
Autores principales: Migliniene, Ieva, Ostasevicius, Vytautas, Gaidys, Rimvydas, Dauksevicius, Rolanas, Janusas, Giedrius, Jurenas, Vytautas, Krasauskas, Povilas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5750779/
https://www.ncbi.nlm.nih.gov/pubmed/29231850
http://dx.doi.org/10.3390/s17122884
_version_ 1783289800300691456
author Migliniene, Ieva
Ostasevicius, Vytautas
Gaidys, Rimvydas
Dauksevicius, Rolanas
Janusas, Giedrius
Jurenas, Vytautas
Krasauskas, Povilas
author_facet Migliniene, Ieva
Ostasevicius, Vytautas
Gaidys, Rimvydas
Dauksevicius, Rolanas
Janusas, Giedrius
Jurenas, Vytautas
Krasauskas, Povilas
author_sort Migliniene, Ieva
collection PubMed
description This paper proposes an approach for designing an efficient vibration energy harvester based on a vibro-impacting piezoelectric microcantilever with a geometric shape that has been rationally modified in accordance with results of dynamic optimization. The design goal is to increase the amplitudes of higher-order vibration modes induced during the vibro-impact response of the piezoelectric transducer, thereby providing a means to improve the energy conversion efficiency and power output. A rational configuration of the energy harvester is proposed and it is demonstrated that the new design retains essential modal characteristics of the optimal microcantilever structures, further providing the added benefit of less costly fabrication. The effects of structural dynamics associated with advantageous exploitation of higher vibration modes are analyzed experimentally by means of laser vibrometry as well as numerically via transient simulations of microcantilever response to random excitation. Electrical characterization results indicate that the proposed harvester outperforms its conventional counterpart (based on the microcantilever of the constant cross-section) in terms of generated electrical output. Reported results may serve for the development of impact-type micropower generators with harvesting performance that is enhanced by virtue of self-excitation of large intensity higher-order mode responses when the piezoelectric transducer is subjected to relatively low-frequency excitation with strongly variable vibration magnitudes.
format Online
Article
Text
id pubmed-5750779
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-57507792018-01-10 Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode Migliniene, Ieva Ostasevicius, Vytautas Gaidys, Rimvydas Dauksevicius, Rolanas Janusas, Giedrius Jurenas, Vytautas Krasauskas, Povilas Sensors (Basel) Article This paper proposes an approach for designing an efficient vibration energy harvester based on a vibro-impacting piezoelectric microcantilever with a geometric shape that has been rationally modified in accordance with results of dynamic optimization. The design goal is to increase the amplitudes of higher-order vibration modes induced during the vibro-impact response of the piezoelectric transducer, thereby providing a means to improve the energy conversion efficiency and power output. A rational configuration of the energy harvester is proposed and it is demonstrated that the new design retains essential modal characteristics of the optimal microcantilever structures, further providing the added benefit of less costly fabrication. The effects of structural dynamics associated with advantageous exploitation of higher vibration modes are analyzed experimentally by means of laser vibrometry as well as numerically via transient simulations of microcantilever response to random excitation. Electrical characterization results indicate that the proposed harvester outperforms its conventional counterpart (based on the microcantilever of the constant cross-section) in terms of generated electrical output. Reported results may serve for the development of impact-type micropower generators with harvesting performance that is enhanced by virtue of self-excitation of large intensity higher-order mode responses when the piezoelectric transducer is subjected to relatively low-frequency excitation with strongly variable vibration magnitudes. MDPI 2017-12-12 /pmc/articles/PMC5750779/ /pubmed/29231850 http://dx.doi.org/10.3390/s17122884 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Migliniene, Ieva
Ostasevicius, Vytautas
Gaidys, Rimvydas
Dauksevicius, Rolanas
Janusas, Giedrius
Jurenas, Vytautas
Krasauskas, Povilas
Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title_full Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title_fullStr Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title_full_unstemmed Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title_short Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode
title_sort rational design approach for enhancing higher-mode response of a microcantilever in vibro-impacting mode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5750779/
https://www.ncbi.nlm.nih.gov/pubmed/29231850
http://dx.doi.org/10.3390/s17122884
work_keys_str_mv AT miglinieneieva rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT ostaseviciusvytautas rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT gaidysrimvydas rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT daukseviciusrolanas rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT janusasgiedrius rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT jurenasvytautas rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode
AT krasauskaspovilas rationaldesignapproachforenhancinghighermoderesponseofamicrocantileverinvibroimpactingmode