Optimization and Dynamic Analysis of a Vibro-Impact Nonlinear Energy Sink with Electromagnetic Coil for Vibration Suppression and Energy Harvesting

Fuente: arXiv
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Main Author: Abdollahi, Ali
Format: Preprint
Published: 2024
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author Abdollahi, Ali
author_facet Abdollahi, Ali
contents This study investigates a system comprising a linear oscillator (LO) equipped with a Vibro-Impact Nonlinear Energy Sink (VI-NES) and a coil. The LO's damping and stiffness coefficients are represented by ( C ) and ( k ), respectively, while a ball inside the LO moves within a cavity, colliding with the walls at both ends. The primary focus is on optimizing the cavity length (( L_c )) and the coefficient of restitution (( κ)) and coil parameter () using a Genetic Algorithm (GA). The motion equations for the LO incorporating the VI-NES are derived, considering the electromagnetic force (( F_e )) and contact force (( F_c )). The study also explores the energy harvesting circuit, which generates electric power by connecting a load resistance to the coil, transforming mechanical energy into electrical energy. The dynamic behavior of the system is analyzed, highlighting the transition from predictable patterns to chaotic responses. Efficiency metrics are defined to measure the VI-NES's performance in absorbing and dissipating excitation energy. The optimization formulation addresses the influence of initial conditions, proposing a multi-objective approach to handle uncertainties. Validation against existing studies confirms the reliability of the proposed optimization method. The results demonstrate that optimizing both ( L_c ) and ( κ) using GA effectively minimizes the amplitude response of the LO, outperforming approximate methods.
format Preprint
id arxiv_https___arxiv_org_abs_2411_17706
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimization and Dynamic Analysis of a Vibro-Impact Nonlinear Energy Sink with Electromagnetic Coil for Vibration Suppression and Energy Harvesting
Abdollahi, Ali
Systems and Control
Chaotic Dynamics
This study investigates a system comprising a linear oscillator (LO) equipped with a Vibro-Impact Nonlinear Energy Sink (VI-NES) and a coil. The LO's damping and stiffness coefficients are represented by ( C ) and ( k ), respectively, while a ball inside the LO moves within a cavity, colliding with the walls at both ends. The primary focus is on optimizing the cavity length (( L_c )) and the coefficient of restitution (( κ)) and coil parameter () using a Genetic Algorithm (GA). The motion equations for the LO incorporating the VI-NES are derived, considering the electromagnetic force (( F_e )) and contact force (( F_c )). The study also explores the energy harvesting circuit, which generates electric power by connecting a load resistance to the coil, transforming mechanical energy into electrical energy. The dynamic behavior of the system is analyzed, highlighting the transition from predictable patterns to chaotic responses. Efficiency metrics are defined to measure the VI-NES's performance in absorbing and dissipating excitation energy. The optimization formulation addresses the influence of initial conditions, proposing a multi-objective approach to handle uncertainties. Validation against existing studies confirms the reliability of the proposed optimization method. The results demonstrate that optimizing both ( L_c ) and ( κ) using GA effectively minimizes the amplitude response of the LO, outperforming approximate methods.
title Optimization and Dynamic Analysis of a Vibro-Impact Nonlinear Energy Sink with Electromagnetic Coil for Vibration Suppression and Energy Harvesting
topic Systems and Control
Chaotic Dynamics
url https://arxiv.org/abs/2411.17706