Energy and dynamics analysis of a single plucking energy harvester for transient-motion-powered IoT applications

This study focuses on a piezo-magneto-elastic structure comprising an economical piezoelectric cantilever and a magnet pair. It is designed for efficient mechanical energy harvesting to power a battery-free motion-sensing IoT system through plucking motions. We conduct a thorough analysis and parame...

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Veröffentlicht in:Energy conversion and management 2024-06, Vol.310, p.118465, Article 118465
Hauptverfasser: Li, Xin, Chuai, Xinyuan, Hu, Guobiao, Zhang, Daxing, Cai, Mingjing, Wang, Congsi, Yang, Yaowen, Liao, Wei-Hsin, Liang, Junrui
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Sprache:eng
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Zusammenfassung:This study focuses on a piezo-magneto-elastic structure comprising an economical piezoelectric cantilever and a magnet pair. It is designed for efficient mechanical energy harvesting to power a battery-free motion-sensing IoT system through plucking motions. We conduct a thorough analysis and parametric study to elucidate the energy and dynamic intricacies during operation, specifically under a single plucking excitation. Beginning with a magnetic dipole–dipole model, we present a potential energy profile to intuitively elucidate and quantitatively assess the energy progression throughout a single plucking transient. By meticulously adjusting the setup parameters, the input potential energy can be precisely tuned, ensuring that the energy harvested from a single plucking motion meets the demand of each round of wireless communication. Diverging from previous power-centric investigations of plucking energy harvesters, in which continuous plucking motions are investigated, our approach provides a new perspective on the energy-centric design and transient dynamics of a single plucking motion. The importance of the energy-matching concept considering the subsequent energy-driven electronic modules is emphasized. This insight offers valuable design principles for the effective energy-centric co-design of cyber-electromechanically coupled self-powered IoT systems. •Potential energy progress model under a single transient plucking excitation.•Buffered energy customization by adjusting the potential barrier between two wells.•Energy-centric cyber-electromechanical co-design for motion-powered systems.
ISSN:0196-8904
1879-2227
DOI:10.1016/j.enconman.2024.118465