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research article

Energy harvesting and inter-floor impact noise control using an optimally tuned hybrid damping system

Hasheminejad, Seyyed Mohammad
•
Lissek, Hervé  
•
Vesal, Rahim
October 2, 2024
Acta Acustica

Impact-loaded floor structures radiate undesired sound waves into adjacent rooms, compromising the acoustic comfort. On the other hand, substantial structural vibrations caused by the impact loading offer a promising energy source for harvesting. Nevertheless, a systematic analytical or numerical investigation of simultaneous inter-floor impact sound transmission control and energy harvesting appears to be missing. Current study describes the conceptual development of a fully coupled 3D analytical model of a dual-functional double-plate floor structure optimized for hybrid regenerative control of inter-floor impact sound transmission. Leveraging multi-mode shunted piezoelectric and Electromagnetic Damper (EMD) energy transduction mechanisms, the model structure is composed of two PZT sandwich plates, which are interlinked through a Nonlinear Vibration Absorber (NVA)-based EMD. The finite Fourier cosine transform and standard normal mode approach are employed to treat the governing acousto-elastic equations. Non-dominated Sorting Genetic Algorithm II is applied to tune the system parameters along Pareto frontiers to target maximum pressure mitigation, maximum energy harvesting, or dual-objective optimization, which hires advantageous features from both configurations for an optimal trade-off between them. Simulations reveal that elasto-acoustic response suppression and energy extraction of the employed stand-alone PZT-based conversion mechanism can be remarkably improved with the adopted optimized hybrid PZT/NVA/EMD-equipped system.

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Type
research article
DOI
10.1051/aacus/2024049
Web of Science ID

WOS:001324280200002

Author(s)
Hasheminejad, Seyyed Mohammad

Iran University Science & Technology

Lissek, Hervé  

École Polytechnique Fédérale de Lausanne

Vesal, Rahim

Iran University Science & Technology

Date Issued

2024-10-02

Publisher

EDP SCIENCES S A

Published in
Acta Acustica
Article Number

42

Subjects

Double-wall structure

•

Impact sound isolation

•

NSGA-II

•

Nonlinear vibration absorber

•

Hybrid energy harvesting floor

•

Multi-resonant shunt damping

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LWE  
Available on Infoscience
January 27, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/245392
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