Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting
Aiming toward improved energy conversion in piezoelectric energy harvesters, this study investigates four-point bending (FPB) energy harvesters (FPB-EH) to explore their prominent features and characteristics. The FPB configuration innovatively extends energy harvesting capabilities relative to conv...
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Fformat: | Journal article |
Iaith: | English |
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Elsevier
2023
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_version_ | 1826310992148037632 |
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author | Hasani, M Khazaee, M Huber, JE Rosendahl, L Rezania, A |
author_facet | Hasani, M Khazaee, M Huber, JE Rosendahl, L Rezania, A |
author_sort | Hasani, M |
collection | OXFORD |
description | Aiming toward improved energy conversion in piezoelectric energy harvesters, this study investigates four-point bending (FPB) energy harvesters (FPB-EH) to explore their prominent features and characteristics. The FPB configuration innovatively extends energy harvesting capabilities relative to conventional cantilever beams. The FPB-EH comprises a composite piezoelectric beam that rests on two supports of a fixed clamp, excited by contact force applied at two contact lines on a moving clamp. A comprehensive analytical electromechanical model for the vibrating energy harvester is presented with unique modeling features, including multi-beam sections and multi-mode-shape functions. Solutions of the analytical model are presented for a wide range of contact force types, including steady-state solutions for harmonic forces, impact forces, periodic and non-periodic arbitrary forces. This comprehensive model progresses the state-of-the-art piezoelectric modeling knowledge and is readily applicable to various energy harvesting configurations. The model is validated against experimental results and finite element analysis. Next, a parametric study was performed to evaluate the effects of various FPB characteristics, including the fixed and moving clamp spans, the waveform, and the period-time of contact force. The results indicate that the FPB configuration can enhance energy conversion efficiency and normalized output energy by factors of over 3 and 6, respectively. Finally, guidance is given for selecting between cantilever and four-point bending configurations. |
first_indexed | 2024-03-07T08:01:49Z |
format | Journal article |
id | oxford-uuid:41a30397-5a63-4873-bdd5-4a1dddea81b0 |
institution | University of Oxford |
language | English |
last_indexed | 2024-03-07T08:01:49Z |
publishDate | 2023 |
publisher | Elsevier |
record_format | dspace |
spelling | oxford-uuid:41a30397-5a63-4873-bdd5-4a1dddea81b02023-10-03T15:53:26ZDesign and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvestingJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:41a30397-5a63-4873-bdd5-4a1dddea81b0EnglishSymplectic ElementsElsevier2023Hasani, MKhazaee, MHuber, JERosendahl, LRezania, AAiming toward improved energy conversion in piezoelectric energy harvesters, this study investigates four-point bending (FPB) energy harvesters (FPB-EH) to explore their prominent features and characteristics. The FPB configuration innovatively extends energy harvesting capabilities relative to conventional cantilever beams. The FPB-EH comprises a composite piezoelectric beam that rests on two supports of a fixed clamp, excited by contact force applied at two contact lines on a moving clamp. A comprehensive analytical electromechanical model for the vibrating energy harvester is presented with unique modeling features, including multi-beam sections and multi-mode-shape functions. Solutions of the analytical model are presented for a wide range of contact force types, including steady-state solutions for harmonic forces, impact forces, periodic and non-periodic arbitrary forces. This comprehensive model progresses the state-of-the-art piezoelectric modeling knowledge and is readily applicable to various energy harvesting configurations. The model is validated against experimental results and finite element analysis. Next, a parametric study was performed to evaluate the effects of various FPB characteristics, including the fixed and moving clamp spans, the waveform, and the period-time of contact force. The results indicate that the FPB configuration can enhance energy conversion efficiency and normalized output energy by factors of over 3 and 6, respectively. Finally, guidance is given for selecting between cantilever and four-point bending configurations. |
spellingShingle | Hasani, M Khazaee, M Huber, JE Rosendahl, L Rezania, A Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title | Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title_full | Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title_fullStr | Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title_full_unstemmed | Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title_short | Design and analytical evaluation of an impact-based four-point bending configuration for piezoelectric energy harvesting |
title_sort | design and analytical evaluation of an impact based four point bending configuration for piezoelectric energy harvesting |
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