Effect of Helix Angle on the Performance of Helical Vertical Axis Wind Turbine
Abstract
:1. Introduction
2. Numerical Model
2.1. Computational Domain and Grid
2.2. Boundary, Initial Conditions, and Computational Procedure
2.3. Model Validation and Solution Independence
3. Results
3.1. Effect of Helix Angle on the Performance of VAWT
3.2. Effect of Helix Angle on Turbine Blade Loads
3.3. Effect of Helix Angle on Turbine Wake
- The turbine wake gets weaker at TSR 3.1 for 120° helical-bladed VAWT when compared with straight and other helical turbines.
- The wake profile gets weaker when the helix angle is increased even from a closer X/D rage of 2.
4. Conclusions
- The study on effect of helix angle of a vertical axis wind turbine has shown that the performance, wake interaction, and the flow interaction are different from those of a straight blade VAWT.
- The performance of a 60° helical blade VAWT was found to be outperforming all the other VAWT blade shapes and had a peak at a moderate TSR. However, it had the highest standard deviation from the average Cm produced by the turbine blade. Normalised Cm plots will enable understanding the moment coefficient characteristics.
- Analysing the quartile performance of the helical turbines gave more insights on how the power production was distributed across the azimuth angle of rotation. The variation in the quartile performance is backed by the standard deviation plot, which suggests that the minimum deviation is for 120° helical-bladed VAWT, since the power production capabilities are spread across the quartiles
- An essential detailed analysis of loads on the sections of blades revealed that the leading segment, mid segment, and trailing segment of a single helical blade contributed different percentages of Cm to the cumulative blade Cm. Z-vorticity contours at different heights of the turbine showed that the flow interference caused secondary peaks and also lead to better understanding of when and where the flow separation on the blade happens.
- In order to better understand the energy extraction, a wake analysis was performed, leading to the understanding that wakes dissipate quickly for non-straight blade VAWTs.
- Analysis of the effect of TSR on the performance of the turbine was also done with the help of a 90° helical-bladed VAWT. Z-vorticity kept reducing as the TSR increased from 2.7 to 3.5.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Divakaran, U.; Ramesh, A.; Mohammad, A.; Velamati, R.K. Effect of Helix Angle on the Performance of Helical Vertical Axis Wind Turbine. Energies 2021, 14, 393. https://doi.org/10.3390/en14020393
Divakaran U, Ramesh A, Mohammad A, Velamati RK. Effect of Helix Angle on the Performance of Helical Vertical Axis Wind Turbine. Energies. 2021; 14(2):393. https://doi.org/10.3390/en14020393
Chicago/Turabian StyleDivakaran, Unnikrishnan, Ajith Ramesh, Akram Mohammad, and Ratna Kishore Velamati. 2021. "Effect of Helix Angle on the Performance of Helical Vertical Axis Wind Turbine" Energies 14, no. 2: 393. https://doi.org/10.3390/en14020393
APA StyleDivakaran, U., Ramesh, A., Mohammad, A., & Velamati, R. K. (2021). Effect of Helix Angle on the Performance of Helical Vertical Axis Wind Turbine. Energies, 14(2), 393. https://doi.org/10.3390/en14020393