Flow Separation Control and Aeroacoustic Effects of a Leading-Edge Slat over a Wind Turbine Blade

被引:0
|
作者
Bouterra, Sami [1 ]
Belamadi, Riyadh [1 ]
Djemili, Abdelouaheb [2 ]
Ilinca, Adrian [3 ]
机构
[1] Natl Higher Sch Technol & Engn, Energy Syst Technol Lab, LTSE, Annaba 23005, Algeria
[2] Badji Mokhtar Univ, Mech Engn Dept, Mech Mat & Ind Maintenance Lab LR3MI, Annaba 23000, Algeria
[3] Univ Quebec, Ecole Technol Super, Mech Engn Dept, 1100 Rue Notre Dame Ouest,Bur A1966, Montreal, PQ H3C 1K3, Canada
关键词
wind turbine airfoil; flow separation control; slat; aeroacoustics; AERODYNAMIC PERFORMANCE; NOISE PREDICTION; EDDY SIMULATION; AEROFOIL; TURBULENCE; DES;
D O I
10.3390/en17225597
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
To enable wind energy to surpass fossil fuels, the power-to-cost ratio of wind turbines must be competitive. Increasing installation capacities and wind turbine sizes indicates a strong trend toward clean energy. However, larger rotor diameters, reaching up to 170 m, introduce stability and aeroelasticity concerns and aerodynamic phenomena that cause noise disturbances. These issues hinder performance enhancement and social acceptance of wind turbines. A critical aerodynamic challenge is flow separation on the blade's suction side, leading to a loss of lift and increased drag, ultimately stalling the blade and reducing turbine performance. Various active and passive flow control techniques have been studied to address these issues, with passive techniques offering the advantage of no external energy requirement. High-lift devices, such as leading-edge slats, are promising in improving aerodynamic performance by controlling flow separation. This study explores the geometric parameters of slats and their effects on wind turbine blades' aerodynamic and acoustic performance. Using an adequate turbulence model at Re = 106 for angles of attack from 14 degrees to 24 degrees, 77 slat configurations were evaluated. Symmetric slats showed superior performance at high angles of attack, while slat chord length was inversely proportional to aerodynamic improvement. A hybrid method was employed to predict noise, revealing slat-induced modifications in eddy topology and increased low- and high-frequency noise. This study's main contribution is correlating slat-induced aerodynamic improvements with their acoustic effects. The directivity reveals a 10-15 dB reduction induced by the slat at 1 kHz, while the slat induces higher noise at higher frequencies.
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页数:36
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