CFD Investigation on the aerodynamic characteristics of a small-sized wind turbine of NREL PHASE VI operating with a stall-regulated method

The objective of this investigation is to clearly understand the aerodynamic characteristics of a small-sized wind turbine of NREL Phase VI, operating with a stall-regulated method using CFD code. Based on this, it is possible to provide turbine designers with the aerodynamic design data to increase efficiency and improve performance in the design phase of future small-sized wind turbine blades. Moreover, a comparison was made between experimental datasets, in order to verify the reliability and validity of the analysis results. The first height in the normal direction from the surface of a rotor blade is about 0.2 mm, and the average value of y+ is about 7 at 7 m/s. The domain is chosen to consist of only two hexahedral mesh regions, namely the interior region, including the wind turbine blade, and the external region excluding the rectangle. The total cell number of the numerical grid is about Ng = 3.0 × 106. Five different inflow velocities, in the range Vin = 7.0−25.1 m/s, are used for the rotor blade calculations. The calculated power coefficient is about 0.35 at a TSR of 5.41, corresponding to 7 m/s, and showed considerably good agreement with the experimental measurements, to within 0.08%. It was observed that the 3-D stall begins to generate near the blade root at a wind speed of 7 m/s. Therefore, root design approaches considering the appropriate selection of the angle of attack and the thickness are very important in order to generate the stall on the blade root. Through a clear understanding of aerodynamic characteristics of a small-sized NREL Phase VI wind turbine, it is expected that this useful aerodynamic data will be made available to designers as guidance in designing stall-regulated wind turbine blades in the development phase of small-sized wind turbine systems in the future.

[1]  Florian R. Menter,et al.  Transition Modelling for General Purpose CFD Codes , 2006 .

[2]  David C. Wilcox A half century historical review of the k-omega model , 1991 .

[3]  Lakshmi N. Sankar,et al.  Effects of transition, turbulence and yaw on the performance of horizontal axis wind turbines , 2000 .

[4]  F. Menter Performance of popular turbulence model for attached and separated adverse pressure gradient flows , 1992 .

[5]  Maureen Hand,et al.  NREL Unsteady Aerodynamics Experiment in the NASA-Ames Wind Tunnel: A Comparison of Predictions to Measurements , 2001 .

[6]  Ervin Bossanyi,et al.  Wind Energy Handbook , 2001 .

[7]  J. Michelsen,et al.  Aerodynamic predictions for the Unsteady Aerodynamics Experiment Phase-II rotor at the National Renewable Energy Laboratory , 2000 .

[8]  R. Bowdler and G. Leventhall Wind Turbine Noise , 2012 .

[9]  L. Fingersh Unsteady Aerodynamics Experiment , 2001 .

[10]  F. Menter Improved two-equation k-omega turbulence models for aerodynamic flows , 1992 .

[11]  F. Menter ZONAL TWO EQUATION k-w TURBULENCE MODELS FOR AERODYNAMIC FLOWS , 1993 .

[12]  D. Wilcox Turbulence modeling for CFD , 1993 .

[13]  Robert T. Biedron,et al.  Computation of Flow Over a Drag Prediction Workshop Wing/Body Transport Configuration Using CFL3D , 2001 .

[14]  Roger,et al.  Wind Turbines , 2018 .

[15]  Gianfranco Guidati,et al.  Wind Turbine Noise , 1996 .

[16]  F. R. Menter,et al.  Transition Modelling for General Purpose CFD Codes , 2006 .

[17]  Simon-Philippe Breton,et al.  Study of the stall delay phenomenon and of wind turbine blade dynamics using numerical approaches and NREL’s wind tunnel tests , 2008 .

[18]  F. Menter Two-equation eddy-viscosity turbulence models for engineering applications , 1994 .

[19]  Jang-Oh Mo,et al.  Numerical simulation for prediction of aerodynamic noise characteristics on a HAWT of NREL phase VI , 2011 .

[20]  Earl P. N. Duque,et al.  Navier-Stokes simulations of the NREL Combined Experiment Phase II rotor , 1999 .

[21]  N. Sørensen,et al.  Rotor performance predictions using a Navier-Stokes method , 1998 .

[22]  G. P. Corten Inviscid Stall Model , 2000 .

[23]  Maureen Hand,et al.  Unsteady Aerodynamics Experiment Phase VI: Wind Tunnel Test Con gurations and Available Data Campaigns , 2001 .