Bio-inspired quad-stable piezoelectric energy harvester for low-frequency vibration scavenging

Due to the unique and diverse nonlinear characteristics, bionic structures can effectively broaden the acquisition bandwidth and improve the performance of harvesters. Inspired by dipteran flight motion, a novel bionic quad-stable piezoelectric energy harvester (BQPEH) is designed to collect low-fre...

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Veröffentlicht in:Energy (Oxford) 2023-11, Vol.282, p.128952, Article 128952
Hauptverfasser: Wang, Tian, Zhang, Qichang, Han, Jianxin, Wang, Wei, Yan, Yucheng, Cao, Xinyu, Hao, Shuying
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Sprache:eng
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Zusammenfassung:Due to the unique and diverse nonlinear characteristics, bionic structures can effectively broaden the acquisition bandwidth and improve the performance of harvesters. Inspired by dipteran flight motion, a novel bionic quad-stable piezoelectric energy harvester (BQPEH) is designed to collect low-frequency ambient vibration. The novelty of this bionic energy harvester lies in the combination of the “click” mechanism and “snap-through” motion, thus broadening the application scenarios and improving adaptability for the harvesters. A mass block and a post-buckled piezoelectric beam are connected by a rigid bar to create quadruple-well potentials. The static bifurcation analysis is performed to identify the quad-stable region in the parameter space. The dynamic responses of the system are investigated theoretically and numerically under constant and swept-frequency excitations and then verified experimentally. Broadband low-frequency and high-power energy harvesting are obtained through the inter-well motion induced by the combined nonlinearity of the BQPEH. The results indicate the potential of the bionic strategy for powering wireless devices in low-frequency environments and provide a novel concept for the innovative development of energy harvesters. •A new bionic quad-stable piezoelectric energy harvester is designed.•The harvester has a combined nonlinearity.•The quadratic stable region is determined by the static bifurcation theory.•The dynamic responses are obtained theoretically and experimentally.•The energy harvester can effectively capture low-frequency vibration energy.
ISSN:0360-5442
DOI:10.1016/j.energy.2023.128952