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Pendulum—driven flapping wind energy harvester for environmental monitoring

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posted on 2025-11-11, 14:59 authored by Sadia BakhtiarSadia Bakhtiar, Amal HajjajAmal Hajjaj, Stephanos TheodossiadesStephanos Theodossiades
<p dir="ltr">This study investigates a novel pendulum-driven flapping wind energy harvester utilizing a pendulum-based mechanism integrated with a piezoelectric cantilever beam, aiming to harness and convert wind energy into electrical power. The energy harvester comprises a square flat plate functioning as a pendulum, which is pivoted to the free end of a cantilever beam. When subjected to wind flow, the pendulum oscillates in the wind direction, inducing coupled motion between the beam and the pendulum. This interaction produces a nonlinear dynamic response, due to the combined effects of structural coupling and fluid-structure interaction. An electromechanical theoretical model has been developed to explore the dynamic response of the harvester. Experimental results demonstrate that the harvester’s performance at a cut-in speed of 5.2 m s−1 and above aligns well with the model predictions. Unlike traditional bluff body-based wind harvesters, this novel design aligns the pendulum motion with the wind direction to enhance vibration intensity and energy transfer through stronger beam coupling. As the wind speed increases, the flapping motion of the pendulum amplifies, triggering large deflections of the piezoelectric beam and resulting in high voltage output. This simple and cost-effective energy harvester generates a maximum peak-to-peak voltage of 45.1 Vpp and peak power of 1.23 mW at a maximum speed of 12.5 m s−1 with optimum load resistance of 220 KΩ.</p>

Funding

Overseas PhD Scholarship Scheme Phase-III, Higher Education Commission, Pakistan

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

Smart Materials and Structures

Volume

34

Issue

10

Article number

105007

Publisher

IOP Publishing

Version

  • VoR (Version of Record)

Rights holder

© The Author(s)

Publisher statement

Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 license - https://creativecommons.org/licenses/by/4.0/. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.

Acceptance date

2025-09-09

Publication date

2025-10-09

Copyright date

2025

ISSN

0964-1726

eISSN

1361-665X

Language

  • en

Depositor

Prof Stephanos Theodossiades. Deposit date: 7 November 2025

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