4.5 Article

A Dual-Beam Coupled System for Hybrid Galloping and Vortex-Induced Vibration Energy Harvesting

Journal

SYMMETRY-BASEL
Volume 14, Issue 12, Pages -

Publisher

MDPI
DOI: 10.3390/sym14122601

Keywords

wind energy harvesting; vortex-induced vibration; galloping; coupled dual beams

Funding

  1. State Key Laboratory of Structural Analysis for Industrial Equipment, Dalian University of Technology, China
  2. National Natural Science Foundation of China
  3. Fundamental Research Funds for the Central Universities
  4. [GZ21114]
  5. [52071059]
  6. [52192692]
  7. [52061135107]
  8. [DUT20TD108]

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By connecting traditional vortex-induced vibration (VIV) and galloping wind energy harvesters, a new hybrid wind piezoelectric energy harvester (HWPEH) is proposed, which inherits the advantages of both traditional harvesters, i.e., reducing the cut-in wind speed and having a wide working bandwidth.
Small wind energy harvesting converts aeroelastic vibration into electricity and can provide independent power supplies for low-power-consumption sensors, which are not convenient for replacing chemical batteries frequently. As wind energy harvesters collect sustainable energy from the ambient environment, they are environmentally friendly and energy saving. The most widely adopted wind-induced vibration mechanisms for designing wind energy harvesters are vortex-induced vibration (VIV) and galloping. VIV-based piezoelectric energy harvesters (VIVPEHs) can stabilize the output voltage at low wind speeds, while galloping-based piezoelectric energy harvesters (GPEHs) can operate at high wind speeds and have wide bandwidths. This paper uses a spring to connect the two traditional wind harvesters to constitute a hybrid wind piezoelectric energy harvester (HWPEH). It is expected that the HWPEH can inherit the advantages of both traditional wind harvesters, i.e., it can reduce the cut-in wind speed, as the traditional VIVPEH, and have a broad working bandwidth, as the traditional GPEH. The effects of the mechanical and circuit parameters on the output voltage and power of the HWPEH are investigated and compared to traditional wind harvesters. It has been found that the aerodynamic behavior of the HWPEH can be customized by changing the masses, stiffnesses, shunt resistances, and damping coefficients. The proposed HWPEH can outperform traditional wind harvesters if the system parameters are well tuned.

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