Published December 31, 2019 | Version v1
Journal article Open

UTILIZATION OF GUIDE VANES TO CONCENTRATE FLOWS TO THE BLADE AND BLOCK VORTEX TO IMPROVE THE POWER FACTOR OF SAVONIUS WIND TURBINE

  • 1. Sanata Dharma University
  • 2. Brawijaya University

Description

Simple design Savonius vertical-axis wind turbine can generate energy at low wind speed from any direction. However, its large static torque has a low power factor. Therefore, an innovation was made by providing 16 guide vanes around the shaft outside the blade with the angle is about 45° to a radial line. The specialty of guide vanes is that, they are able to concentrate the wind flow toward the turbine blade from any direction. The fluid motion around the turbine blade that produces torque on the turbine shaft was analyzed utilizing the Computational Fluid Dynamics (CFD) simulation and then verified by tracking actual fluid motion strings of threads attached on each side of the turbine blade. The result shows that without guide vanes the wind flow around the turbine blade generates vortex on the blade and Karman vortex at the downstream. These vortexes descend effectively kinetic energy in the wind flow so that the mechanical energy on the turbine shaft becomes small. At a certain blade position, the vortex becomes stronger and the fluid separation from the blade surface becomes thicker. The stronger vortex tends to descend stronger fluid kinetic energy while the thicker separation tends to reduce the lift on the blade. Consequently, these two flow conditions tend to produce negative torque. Installing guide vanes around the blade, the wind flows are concentrated by the guide vanes to the turbine blade, which effectively reduces vortex around the blade and blocks large vortex outside the guide vanes downstream. Flow separation is suppressed by the concentrated flow producing larger lift. As a result, the power factor increases by 61.6 %. This huge increase in power factor is achieved when the wind speed is 5 m/s though a stable turbine rotation is achieved at a lower speed

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References

  • Irabu, K., Roy, J. N. (2007). Characteristics of wind power on Savonius rotor using a guide-box tunnel. Experimental Thermal and Fluid Science, 32 (2), 580–586. doi: https://doi.org/10.1016/j.expthermflusci.2007.06.008
  • Ogawa, T., Yoshida, H. (1986). The Effects of a Deflecting Plate and Rotor End Plates on Performances of Savonius-type Wind Turbine. Bulletin of JSME, 29 (253), 2115–2121. doi: https://doi.org/10.1299/jsme1958.29.2115
  • Mohamed, M. H., Janiga, G., Pap, E., Thévenin, D. (2011). Optimal blade shape of a modified Savonius turbine using an obstacle shielding the returning blade. Energy Conversion and Management, 52 (1), 236–242. doi: https://doi.org/10.1016/j.enconman.2010.06.070
  • Altan, B. D., Atılgan, M. (2012). A study on increasing the performance of Savonius wind rotors. Journal of Mechanical Science and Technology, 26 (5), 1493–1499. doi: https://doi.org/10.1007/s12206-012-0313-y
  • Altan, B. D., Atılgan, M. (2008). An experimental and numerical study on the improvement of the performance of Savonius wind rotor. Energy Conversion and Management, 49 (12), 3425–3432. doi: https://doi.org/10.1016/j.enconman.2008.08.021
  • Altan, B. D., Atılgan, M., Özdamar, A. (2008). An experimental study on improvement of a Savonius rotor performance with curtaining. Experimental Thermal and Fluid Science, 32 (8), 1673–1678. doi: https://doi.org/10.1016/j.expthermflusci.2008.06.006
  • Fujisawa, N. (1992). On the torque mechanism of Savonius rotors. Journal of Wind Engineering and Industrial Aerodynamics, 40 (3), 277–292. doi: https://doi.org/10.1016/0167-6105(92)90380-s
  • Gupta, R. et. al. (2011). CFD Analysis of a Two-Bucket Savonius Rotor For Various Overlap Conditions. Proceedings of the ASME 2011 5th International Conference on Energy Sustainability ES2011.
  • Debnath, B. K., Biswas, A., Gupta, R. (2009). Computational fluid dynamics analysis of a combined three-bucket Savonius and three-bladed Darrieus rotor at various overlap conditions. Journal of Renewable and Sustainable Energy, 1 (3), 033110. doi: https://doi.org/10.1063/1.3152431
  • Mohamed, M. H., Janiga, G., Pap, E., Thévenin, D. (2010). Optimization of Savonius turbines using an obstacle shielding the returning blade. Renewable Energy, 35 (11), 2618–2626. doi: https://doi.org/10.1016/j.renene.2010.04.007
  • Fujisawa, N., Gotoh, F. (1992). Visualization study of the flow in and around a Savonius rotor. Experiments in Fluids, 12 (6), 407–412. doi: https://doi.org/10.1007/bf00193888
  • Gupta, R., Das, R., Rituraj, Gautam, Deka, S. S. (2012). CFD Analysis of a Two-bucket Savonius Rotor for Various Overlap Conditions. ISESCO Journal of Science and Technology, 8 (13), 67–74.