Enhanced broadband 2-DOF rotational energy harvester incorporating centrifugally stiffened and softened beams

This study proposes a two-degree-of-freedom (2-DOF) rotational bistable piezoelectric energy harvester that integrates a centrifugally stiffened beam with a centrifugally softened beam. An electromechanically coupled nonlinear dynamic model is established based on the extended Hamilton’s principle, and the dynamic responses and electrical output characteristics are investigated through numerical and experimental studies. The results show that the complementary centrifugal tuning characteristics of the two beams produce two dominant response regions and a corresponding dual-peak broadband electrical response over the investigated rotational-frequency range up to 125 rad/s. Compared with a typical one-degree-of-freedom (1-DOF) rotational bistable harvester, the proposed 2-DOF design expands the frequency-swept displacement-response bandwidth by 112.5%. Experimental results further verify the predicted evolution of motion states and the dual-peak voltage output. Using an average-power threshold of 1 μW, the experimentally validated effective power band extends continuously from approximately 40 to 125 rad/s. In addition, a self-powered TPMS demonstration confirms that the harvested rotational energy can be rectified and regulated to drive a commercial wireless sensor. The proposed design offers a practical strategy for broadening the operational bandwidth of rotational piezoelectric energy harvesters for tire-mounted self-powered sensing applications.

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Publication Details

Journal
Mechanical Systems and Signal Processing
Published
2026-09-30
DOI
https://doi.org/10.1016/j.ymssp.2026.115016
Primary Topic
Innovative Energy Harvesting Technologies
Type
article
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Enhanced broadband 2-DOF rotational energy harvester incorporating centrifugally stiffened and softened beams

Yunshun Zhang, Buyun Zhang, Ran Chen, Yunrong Wang et al.
Mechanical Systems and Signal Processing
Innovative Energy Harvesting Technologies
article

Enhanced broadband 2-DOF rotational energy harvester incorporating centrifugally stiffened and softened beams

Yunshun Zhang, Buyun Zhang, Ran Chen, Yunrong Wang, Yuyang Qian
article en

Abstract

This study proposes a two-degree-of-freedom (2-DOF) rotational bistable piezoelectric energy harvester that integrates a centrifugally stiffened beam with a centrifugally softened beam. An electromechanically coupled nonlinear dynamic model is established based on the extended Hamilton’s principle, and the dynamic responses and electrical output characteristics are investigated through numerical and experimental studies. The results show that the complementary centrifugal tuning characteristics of the two beams produce two dominant response regions and a corresponding dual-peak broadband electrical response over the investigated rotational-frequency range up to 125 rad/s. Compared with a typical one-degree-of-freedom (1-DOF) rotational bistable harvester, the proposed 2-DOF design expands the frequency-swept displacement-response bandwidth by 112.5%. Experimental results further verify the predicted evolution of motion states and the dual-peak voltage output. Using an average-power threshold of 1 μW, the experimentally validated effective power band extends continuously from approximately 40 to 125 rad/s. In addition, a self-powered TPMS demonstration confirms that the harvested rotational energy can be rectified and regulated to drive a commercial wireless sensor. The proposed design offers a practical strategy for broadening the operational bandwidth of rotational piezoelectric energy harvesters for tire-mounted self-powered sensing applications.

Mechanical Systems and Signal ProcessingVol. 260
Jiangsu University (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Innovative Energy Harvesting Technologies
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Enhanced broadband 2-DOF rotational energy harvester incorporating centrifugally stiffened and softened beams — Yunshun Zhang, Buyun Zhang, et al. · Mechanical Systems and Signal Processing (2026) | TGRS Research Map | TGRS