Title :
Modeling and validation of a cross flow turbine using free vortex models and an improved 2D lift model
Author :
Urbina, R. ; Peterson, M.L. ; Bates, P.M. ; Kimball, R.W.
Author_Institution :
Dept. of Mech. Eng., Univ. of Maine, Orono, ME, USA
Abstract :
A number of numerical methods have been developed to predict the performance and aerodynamic loads of the Darrieus turbine. Prior work by Reference [1] using blade element methods (BEM) and free vortex methods (FVM) [2] has produced reasonable models that predict the hydrodynamic performance of the Darrieus turbine. The validated models reasonably estimate the performance at low solidities (Nc/R≪1), but lose accuracy at higher solidity ratios. Dynamic stall and flow curvature has been recognized by [2] [3] and [4] to be significant modeling parameters which have limited the accuracy of prior models. The current numerical model extends the predictions of the FVM model to a higher solidity ratio range. An improved model is presented for the condition of high angles of attack and for dynamic stall,. Experimental data on a series of two (Nc/R≈.9) and four (Nc/R≈1.8) blade configurations are presented as validation of the modified analytical vortex model.
Keywords :
aerodynamics; blades; drag; environmental factors; hydroelectric power; tidal power stations; vortices; wind turbines; 2D lift model; BEM; Darrieus turbine; FVM; NACA 63018 blades; aerodynamic load; blade element method; cross flow turbine; drag curve; environmental impact; fish spawning; fragile ecosystem; free vortex model; hydrodynamic performance; hydrofoil profile; renewable power; solidity ratio; tidal current; tidal energy; Biological system modeling; Blades; Computational modeling; Mathematical model; Numerical models; Wind turbines;
Conference_Titel :
OCEANS 2010
Conference_Location :
Seattle, WA
Print_ISBN :
978-1-4244-4332-1
DOI :
10.1109/OCEANS.2010.5664420