Study of the Behavior of a Vertical Axis Eolic Turbine with Articulated Blades

Document Type : Regular Article

Authors

1 Federal University of Itajubá, Av. BPS, 1303, Pinheirinho, Itajuba, 37500-015, Minas Gerais, Brazil

2 Energy Matrix Company – Itajubá-Mg- Brazil

Abstract

This work presents the results of the development of a vertical axis wind turbine composed of variable geometry, plane blades, applied in operations with low wind speeds. The new concept of vertical axis wind turbine with variable opening blades is presented as an innovative prototype where mechanical details are important for the natural control of the openings of the blades. Theoretical, numerical and experimental analyzes are performed in the turbine called DEC® with the aim of determining the aerodynamic characteristics. An analysis of the behavior of the DEC® turbine consists of a numerical study carried out to calculate or drag coefficient, considering a range of opening positions of the opening at each moment to determine the power coefficient. A second numerical approach is to analyze the moment caused by the interaction between all the turbine blades, in which the effects of energy dissipation caused by the flow mats are considered. Then, the theoretical, numerical results are validated by tests performed using a model in the open wind tunnel, where the prototype is subjected to different wind speeds while maintaining rotation control. Suggestions are made to improve the mechanical and aerodynamic design of the innovative prototype. Finally, the DEC® turbine is expected to serve as an inspiration for creating other mechanical forms of passive or active control to improve variable aerodynamics applied in low-speed conditions.
 
 

Keywords


Aliabadi, S. K and S. Rasekh (2019). Effect of sudden change in free stream velocity on the wind turbine  airfoil performance based on boundary element method. Engineering Analysis with Boundary Elements. 101, 360-370.##
Antonini, E. G. A., D. A. Romero and C. H.  Amon (2016). Analysis and modifications of turbulence models for wind turbine wake simulations in atmospheric boundary layers. International Mechanical Engineering Congress and Exposition, IMECE2016. ASME.##
Bhutta, M., M. Aslam and  M. Hayat (2012) Vertical Axis Wind Turbine – A Review of Various Configurations and Design Techniques. Elsevier, Renewable and Sustainable Energy Reviews 16, 1926-1939.##
Ferrari, G., D. Federici, P. Schito, F. Inzoli and R. Mereu (2017) CFD study of Savonius wind turbine: 3D model validation and parametric analysis. Renewable Energy 105, 722-734.##
Hui, I, B. E. Cainb and J. O. Dabiri (2018). Public receptiveness of vertical axis wind turbines. Energy Policy 112,  258–271.##
Kumar,  R., K. Raahemifar and A. S. Fung (2018). A critical review of vertical axis wind turbines for urban applications. Renewable and Sustainable Energy Reviews 89, 281–291.##
Launder, B. E. and D. B. Spalding (1974). The Numerical Computation of Tturbulent Flows. Computer Methods in applied mechanics and engineering 3, 269-289.##
LEAP CFD TEAM (Blog). Tips & Tricks: Convergence and Mesh Independence Study. January 17, 2012.##
Lee, J. H., Y. T. Lee and H. C. Lim (2016) Effect of twist angle on the performance of Savonius wind turbine. Renewable Energy 89, 231-244.##
Letcher, T. M. (2017). Wind Energy Engineering. Academic Press of Elsevier.##
Manwell, J. F., J. G. Mcgowan and A. L. Rogers (2009). Wind Energy Explained Theory, design and Aplication. John Wiley and Sons, Chichester, UK.##
MCtavish, S., D. Feszty and T. Sankar (2012). Steady and rotating computational fluid dynamics simulations of a novel vertical axis wind turbine for small-scale power generation. Renewable Energy 41, 171-179.##
Menter, F. R. (1994). Two-Equation Eddy-Viscosity Turbulence Models for Engineering Applications. AIAA Journal 32 (8), 1598-1605.##
Qasim, A. Y., R. Usubamatov and Z. M. Zain (2011). Design of Vertical Axis Wind Turbine with Movable Vanes. Australian Journal of Basic and Applied Sciences 5(11), 896-902.##
Ramirez Camacho R. G. and J. R. Barbosa (2008). The boundary element method applied to forced convection heat problems. International Communications in Heat and Mass Transfer 35(1), 1-11.##
Ramirez Camacho R. G. and N. Manzanares Filho (2005). A Source Wake Model for Cascades of Axial Flow Turbomachines. Journal of the Brazilian Society of Mechanical Sciences, Vol. XXVII, 288-299.##
Wilcox, D. C. (1993). Comparison of Two-equation Turbulence Models for Boundary Layers with Pressure Gradients. AIAA J. 31(8), 1414–1421.##
Wilcox D. C. (1994).Simulating Transition with a Two-equation Turbulence Model. AIAA J. 32, 247–255.##
Wilcox, D. C. (1988) Reassessment of the Scale-determining Equation for Advanced Turbulence Models. AIAA J. 26(11), 1299–1310##
Volume 15, Issue 2 - Serial Number 63
March and April 2022
Pages 603-615
  • Received: 03 May 2021
  • Revised: 10 October 2021
  • Accepted: 05 November 2021
  • Available online: 03 February 2022