DOI:
https://doi.org/10.64539/sjer.v2i2.2026.459Keywords:
Computational Fluid Dynamics (CFD), Add-on, Power Output, Twist angle, Cant angle, Tip speed ratioAbstract
The aerodynamic performance of wind turbine blades plays a critical role in maximizing energy generation and overall system efficiency, making it a key consideration in modern renewable energy design. Despite extensive research on blade optimization, there remains a notable gap in understanding the combined effects of spoiler and winglet geometries, particularly their size and orientation on aerodynamic efficiency under low wind speed conditions. This study aims to address this gap by conducting a comprehensive numerical investigation into the influence of spoiler and winglet configurations on wind turbine performance. Computational Fluid Dynamics (CFD) simulations were performed using COMSOL Multiphysics, with the k-ε turbulence model employed to accurately capture turbulent flow behavior. A detailed parametric analysis was carried out, considering winglet height (4%–13% of blade radius), cant angle (20°–90°), twist angle (−2° to 12°), and tip speed ratio (0.02–1.12) at a wind velocity of 3 m/s. The results reveal that optimal combinations of spoiler and winglet parameters significantly enhance aerodynamic efficiency. The study identifies specific design ranges that maximize power output, achieving a peak aerodynamic power of 62.8 W. Although the addition of these aerodynamic devices increases the inertia of the turbine, the system performance improves, with an observed increase in output power of approximately 12%. These findings provide valuable insights for the design and optimization of wind turbine blades, particularly for low wind speed applications.
References
[1] K. A. Makinde, O. B. Adewuyi, A. O. Amole and O. A. Adeaga, “Design of Grid-connected and Stand-alone Photovoltaic Systems for Residential Energy Usage: A Technical Analysis,” Journal of Energy Research and Reviews. vol. 8, no. 1, pp. 34-50, 2021. http://doi.org/10.9734/JENRR/2021/v8i130203.
[2] O. A. Adeaga, “Towards Numerical Investigation of Velocity Variation on Thin Ellipsoidal Aerofoil ( NACA 3520 ) Using Surface Vorticity Method,” 2023 Int. Conf. Sci. Eng. Bus. Sustain. Dev. Goals, vol. 1, no. Naca 3520, pp. 1–8. https://doi.org/10.1109/SEB-SDG57117.2023.10124382.
[3] S. K. Ung, W. T. Chong, S. Mat, J. H. Ng, Y. H. Kok, and K. H. Wong, “Investigation into the Aerodynamic Performance of a Vertical Axis Wind Turbine with Endplate Design,” Energies, vol. 15, no. 19, 2022. https://doi.org/10.3390/en15196925.
[4] O. O. Alabi, G. O. Ogunsiji, and S. A. Dada, “Performances evaluation of blended alternative refrigerant in vapour compression refrigeration system.,” Fed. Trend Sci. Technolojy Journal., vol. 8, no. 2, pp. 37–44, 2023. https://www.researchgate.net/profile/Samuel-Dada-6/publication/373683323.
[5] O. A. Adeaga, O.O. Alabi, S. A. Akintola, “Experimental Investigation of the Potential of Liquified Petroleum Gas in Vapour Compression Refrigeration System,” LAUTECH Journal of Engineering and Technology, vol. 17, no. 1, pp. 1–7, 2023. https://www.laujet.com/index.php/laujet/article/view/544.
[6] Z. Li, M. Liu, X. Cao, M. Gao, L. Cheng, and H. Sun, “Aerodynamic performance analysis and power generation characteristics experiment of vertical axis wind turbine,” Eng. Reports, vol. 4, no. 4, pp. 1–14, 2022. https://doi.org/10.1002/eng2.12500.
[7] B. Zhu, X. Sun, Y. Wang, and D. Huang, “Performance characteristics of a horizontal axis turbine with fusion winglet,” Energy, vol. 120, pp. 431–440, 2017. https://doi.org/10.1016/j.energy.2016.11.094.
[8] O. A. Gaheen, M. A. Aziz, M. Hamza, H. Kashkoush, and M. A. Khalifa, “Fluid and Structure Analysis of Wind Turbine Blade with Winglet,” J. Adv. Res. Fluid Mech. Therm. Sci., vol. 90, no. 1, pp. 80–101, 2022. https://doi.org/10.37934/arfmts.90.1.80101.
[9] M. Sessarego, N. Ramos-Garcia, and W. Z. Shen, “Analysis of winglets and sweep on wind turbine blades using a lifting line vortex particle method in complex inflow conditions,” J. Phys. Conf. Ser., vol. 1037, no. 2, 2018. https://doi.org/10.1088/1742-6596/1037/2/022021.
[10] N. A. Satwika, R. Hantoro, S. Sarwono, and G. Nugroho, “Experimental investigation and numerical analysis on horizontal axis wind turbine with winglet and pitch variations,” Eng. J., vol. 23, no. 6, pp. 345–360, 2019. https://doi.org/10.4186/ej.2019.23.6.345.
[11] T. H. Hansen and F. Mühle, “Winglet optimization for a model-scale wind turbine,” Wind Energy, vol. 21, no. 8, pp. 634–649, 2018. https://doi.org/10.1002/we.2183.
[12] L. Li, Y. H. Li, Q. K. Liu, and H. W. Lv, “A mathematical model for horizontal axis wind turbine blades,” Appl. Math. Model., vol. 38, no. 11–12, pp. 2695–2715, 2014. https://doi.org/10.1016/j.apm.2013.10.068.
[13] T. Khan, B. Singh, M. Thariq, H. Sultan, K. A. Ahmad, “Performance of a HAWT Rotor with a Modified Blade Configuration,” Pertanika J. Sci. & Technol. vol. 30, no 1, pp. 201-220, 2021. https://doi.org/10.47836/pjst.30.1.11.
[14] A. Eltayesh et al., “Experimental and numerical investigation of the effect of blade number on the aerodynamic performance of a small-scale horizontal axis wind turbine,” Alexandria Eng. J., vol. 60, no. 4, pp. 3931–3944, 2021. https://doi.org/10.1016/j.aej.2021.02.048.
[15] D. Gueraiche and S. Popov, “Winglet geometry impact on DLR-F4 aerodynamics and an analysis of a hyperbolic winglet concept,” Aerospace, vol. 4, no. 4, 2017. https://doi.org/10.3390/aerospace4040060.
[16] M. H. A. Madsen, F. Zahle, S. G. Horcas, T. K. Barlas, and N. N. Sørensen, “CFD-based curved tip shape design for wind turbine blades,” Wind Energy Sci., vol. 7, no. 4, pp. 1471–1501, 2022. https://doi.org/10.5194/wes-7-1471-2022.
[17] M. G. Khalafallah, A. M. Ahmed, and M. K. Emam, “The effect of using winglets to enhance the performance of swept blades of a horizontal axis wind turbine,” Adv. Mech. Eng., vol. 11, no. 9, pp. 1–10, 2019. https://doi.org/10.1177/1687814019878312.
[18] M. G. Mourad, I. Shahin, S. S. Ayad, O. E. Abdellatif, and T. A. Mekhail, “Effect of winglet geometry on horizontal axis wind turbine performance,” Eng. Reports, vol. 2, no. 1, pp. 1–19, 2020. https://doi.org/10.1002/eng2.12101.
[19] S. R. Reddy, G. S. Dulikravich, H. Sobieczky, and M. Gonzalez, “Bladelets-Winglets on Blades of Wind Turbines: A Multiobjective Design Optimization Study,” J. Sol. Energy Eng. Trans. ASME, vol. 141, no. 6, 2019. https://doi.org/10.1115/1.4043657.
[20] N. A. Satwika, Sarwono, and R. Hantoro, “Investigation Flow on Horizontal Axis Wind Turbine with Betz Chord Distribution, Twist, and Winglet,” Proc. - 2018 4th Int. Conf. Sci. Technol. ICST 2018, vol. 1, pp. 1–6, 2018. https://doi.org/10.1109/ICSTC.2018.8528653.
[21] S. Verma, A. R. Paul, A. Jain, and F. Alam, “Numerical investigation of stall characteristics for winglet blade of a horizontal axis wind turbine,” E3S Web Conf., vol. 321, 2021. https://doi.org/10.1051/e3sconf/202132103004.
[22] X. Hua, C. Zhang, J. Wei, X. Hu, and H. Wei, “Wind turbine bionic blade design and performance analysis,” J. Vis. Commun. Image Represent., vol. 60, pp. 258–265, 2019. https://doi.org/10.1016/j.jvcir.2019.01.037.
[23] S. Amroune et al., “Manufacturing of Rapid Prototypes of Mechanical Parts Using Reverse Engineering and 3D Printing,” J. Serbian Soc. Comput. Mech., vol. 15, no. 1, pp. 167–176, 2021. https://doi.org/10.24874/jsscm.2021.15.01.11.
[24] S. Amroune, A. Belaadi, N. Menasri, M. Zaoui, B. Mohamad, and H. Amin, “New approach for computer-aided static balancing of turbines rotors,” Diagnostyka, vol. 20, no. 4, pp. 95–101, 2019. https://doi.org/10.29354/diag/114621.
[25] S. Amroune, B. Mohamad, M. Moussaoui, and H. Saaidi, “Geometric regeneration and mechanical analysis of a gas turbine blade type frame 9001 GE,” Eng. Solid Mech., vol. 6, no. 2, pp. 105–112, 2018. https://doi.org/10.5267/j.esm.2018.3.003.
[26] H. M. S. M. Mazarbhuiya, A. Biswas, and K. K. Sharma, “A 2D numerical simulation of blade twist effect on the aerodynamic performance of an asymmetric blade vertical axis wind turbine in low wind speed,” EAI Endorsed Trans. Energy Web, vol. 7, no. 28, pp. 1–7, 2020. https://doi.org/10.4108/EAI.13-7-2018.162828.
[27] O. Erkan, M. Özkan, T. H. Karakoç, S. J. Garrett, and P. J. Thomas, “Investigation of aerodynamic performance characteristics of a wind-turbine-blade profile using the finite-volume method,” Renew. Energy, vol. m, 2020. https://doi.org/10.1016/j.renene.2020.07.138.
[28] O. O. Alabi, O. A. Adeaga, and S. A. Akintola, “Numerical Modeling and Investigation of Flow of Incompressible Non-Newtonian Fluids through Uniform Slightly Deformable Channel,” 2023 Int. Conf. Sci. Eng. Bus. Sustain. Dev. Goals, vol. 1, no. 1984, pp. 1–6, 2020. https://doi.org/10.1109/SEB-SDG57117.2023.10124471.
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