Por favor, use este identificador para citar o enlazar este ítem: http://repositorio.ufc.br/handle/riufc/61945
Tipo: Artigo de Periódico
Título : k–ω SST (shear stress transport) turbulence model calibration: A case study on a small scale horizontal axis wind turbine
Autor : Rocha, Paulo Alexandre Costa
Rocha, Hélio Henrique Barbosa
Carneiro, Francisco Olimpio Moura
Silva, Maria Eugênia Vieira da
Bueno, André Valente
Palabras clave : Aerodynamic performance;k–ω SST turbulence model;Model calibration;Small scale HAWT;Wind energy
Fecha de publicación : 2014
Editorial : Elsevier Ltd. All
Citación : ROCHA, Paulo Alexandre Costa; ROCHA, Hélio Henrique Barbosa; CARNEIRO, Francisco Olimpio Moura; SILVA, Maria Eugenia Vieira da; BUENO, André Valente . k-ω SST (shear stress transport) turbulence model calibration: A case study on a small scale horizontal axis wind turbine. Energy, v. 65, p. 412-418, 2014.
Abstract: This work deals with a computational investigation emphasized on the calibration of a turbulence model regarding to the operational capability of a SS-HAWT (small-scale horizontal axis wind turbine). Experimental field tests were carried out to collect data to evaluate the performance (power) coefficient, Cp, as a function of the tip-speed ratio, λ. The prototype examined was a three-bladed wind turbine (NACA (National Advisory Committee for Aeronautics) 0012 profile) designed for fixed tip-speed ratio (with λ = 5), constructed and operated at the Federal University of Ceará. The maximum value experimentally achieved for Cp was about 14%. The k–ω SST (shear stress transport) turbulence model, solved by the open source CFD (computational fluid dynamics) toolbox OpenFOAM (Open Source Field Operation and Manipulation), assessed the wind turbine performance. The experimental data information obtained reporting the aerodynamic performance of the SS-HAWT prototype was required to calibrate the model. The turbulence intensity and the characteristic length were studied in terms of the β∗ parameter. The power coefficient numerically predicted tends to agree with the experimental assessment. The variation of β∗ mainly affects viscous friction over the blades.
URI : http://www.repositorio.ufc.br/handle/riufc/61945
ISSN : 0360-5442
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