Multiple Poincare sections approach in an example energy harvesting system with time-varying potential

This paper presents a comprehensive numerical analysis of a nonlinear energy harvesting system utilizing magnetic interactions and piezoelectric transducers. The primary objective of the study was to evaluate the influence of varying magnetic pole configurations and excitation parameters on the system's energy efficiency. For the configuration exhibiting the most favorable energy properties, a detailed dynamic analysis was conducted, considering the presence of coexisting solutions and regions of chaotic excitation. Special emphasis was placed on an original identification procedure for multiple Poincaré sections, based on partitioning phase coordinate sequences into even and odd sets. The analysis revealed complex phenomena, such as transient chaos and the coexistence of multiple stable periodic orbits, which – under specific initial conditions – offer significantly higher energy effectiveness than standard solutions. The results confirmed that the optimal magnet configuration ensures stable energy harvesting over a wide frequency range, while the number of excited multiple Poincaré sections is significantly determined by the cyclic variation of the potential.

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Publication Details

Journal
Chaos Solitons & Fractals
Published
2026-09-05
DOI
https://doi.org/10.1016/j.chaos.2026.118998
Primary Topic
Innovative Energy Harvesting Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Multiple Poincare sections approach in an example energy harvesting system with time-varying potential

Damian Gąska, Sławomir Bucki, Jerzy Margielewicz, Krzysztof MARGIELEWICZ
Chaos Solitons & Fractals
Innovative Energy Harvesting Technologies
article

Multiple Poincare sections approach in an example energy harvesting system with time-varying potential

Damian Gąska, Sławomir Bucki, Jerzy Margielewicz, Krzysztof MARGIELEWICZ
article en

Abstract

This paper presents a comprehensive numerical analysis of a nonlinear energy harvesting system utilizing magnetic interactions and piezoelectric transducers. The primary objective of the study was to evaluate the influence of varying magnetic pole configurations and excitation parameters on the system's energy efficiency. For the configuration exhibiting the most favorable energy properties, a detailed dynamic analysis was conducted, considering the presence of coexisting solutions and regions of chaotic excitation. Special emphasis was placed on an original identification procedure for multiple Poincaré sections, based on partitioning phase coordinate sequences into even and odd sets. The analysis revealed complex phenomena, such as transient chaos and the coexistence of multiple stable periodic orbits, which – under specific initial conditions – offer significantly higher energy effectiveness than standard solutions. The results confirmed that the optimal magnet configuration ensures stable energy harvesting over a wide frequency range, while the number of excited multiple Poincaré sections is significantly determined by the cyclic variation of the potential.

Chaos Solitons & FractalsVol. 212
Silesian University of Technology (PL), Academy of Fine Arts in Katowice (PL)
Narodowe Centrum Nauki
Affordable and clean energy
Openalex Percentile: Top 19%
Innovative Energy Harvesting Technologies
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Multiple Poincare sections approach in an example energy harvesting system with time-varying potential — Damian Gąska, Sławomir Bucki, et al. · Chaos Solitons & Fractals (2026) | TGRS Research Map | TGRS