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March 10, 202615 citationsOpen Access

Energy-Harvesting Performance of Twin-Rotor Vertical-Axis Wind Turbines with Phase Interference Under Different Solidities

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MWMiankui WuRJRenwei JiPDPeng Dou

Key Points

  • This research investigates how phase interference and solidity influence the aerodynamic performance of twin-rotor vertical-axis wind turbines.
  • Developed a phase interference aerodynamic analysis model using computational fluid dynamics.
  • Conducted experimental validations to confirm the numerical model's accuracy.
  • Explored aerodynamic forces and wake characteristics under varying solidity and phase angle.
  • Twin-rotor turbines showed an increased energy utilization coefficient compared to single rotors.
  • The phase angle significantly affects turbine efficiency, improving performance within specific ranges.
  • Turbines at certain intermediate phase angles showed consistent efficiencies supportive of better power transmission.
  • Minimizing pressure influences led to balanced power output and improved wake characteristics.

Abstract

This paper aims to investigate the aerodynamic variation patterns of twin-rotor vertical-axis wind turbines (TR-VAWTs) considering phase interference under different solidities, and to reveal the interactive mechanism between solidity, phase interference, and aerodynamic loads of TR-VAWTs. This paper first establishes a phase interference aerodynamic analysis model for TR-VAWTs based on two-dimensional computational fluid dynamics (CFD) methods. Secondly, experimental results are used to verify the accuracy of the numerical model. Finally, the variation patterns of aerodynamic forces and wake characteristics of TR-VAWTs under different parameters (solidity, initial phase angle) are explored. The results show that: (1) Each turbine of the side-by-side TR-VAWTs exhibits an increase in the energy utilization coefficient (CP) in comparison with a single rotor. (2) The phase angle exhibits similar influence patterns on the efficiency of TR-VAWTs with different solidities. As the phase angle varies within the range of 30° to 60°, the efficiencies of rotor 1 and rotor 2 under medium-to-high tip speed ratios are both improved, while within the range of 60° to 90°, the efficiencies of each rotor generally decrease. (3) When TR-VAWTs with different solidities are at intermediate phase angles (90° for two blades, 60° for three blades, and 45° for four blades), the efficiencies of each rotor are basically consistent, which is conducive to power transmission. (4) If the intermediate phase angle is adopted as the reference configuration, the pressure influence on the turbines is minimized, which can not only make the power output more balanced but also improve the wake characteristics to a certain extent.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/69af95c070916d39fea4d9c0https://doi.org/10.3390/jmse14050508
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Solidity effects and azimuth angles on flow field aerodynamics and performance of vertical axis wind turbines at low Reynolds number2024 · 7 citations
  2. 2Dual-Rotor Straight Blade Vertical-Axis Wind Turbine for Farm Settings: A Numerical Study2026
  3. 3Three-Dimensional Numerical Investigation of a Novel Vertical-Axis Wind Turbine Using Modern Turbulence Models2026
  4. 4An assessment of a dual-rotor wind turbine system and the implications of rotor phasing2026
  5. 5Aerodynamic performance of variable pitch vertical axis wind turbines at low TSR: a transient URANS investigation2026