The Effect of Various Wedge Flap Configurations on the Performance of Wind Turbine Airfoil

被引:5
作者
Abdalkarem, Asmail A. M. [1 ]
Fazlizan, Ahmad [1 ]
Muzammil, Wan Khairul [2 ]
Lim, Chin Haw [1 ]
Ibrahim, Adnan [1 ]
Wong, Kok Hoe [3 ]
Kazem, Hussein A. [4 ]
机构
[1] Univ Kebangsaan Malaysia, Solar Energy Res Inst SERI, Bangi 43600, Selangor, Malaysia
[2] Univ Malaysia Sabah, Fac Engn, Energy Res Unit, Kota Kinabalu 88400, Malaysia
[3] Univ Southampton Malaysia, Carbon Neutral Res Grp CNRG, Iskandar Puteri 79200, Malaysia
[4] Sohar Univ, Fac Engn, POB 44, Sohar PCI 311, Oman
关键词
CFD; NACA0021; Wind turbine; Wedge flap; Passive flow control; TURBULENCE MODELS; DYNAMIC STALL; GURNEY FLAPS; FLOW-CONTROL; SIMULATION; DESIGN; IMPACT;
D O I
10.1007/s40997-023-00743-w
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Controlling turbulent flow to improve wind turbine airfoils' aerodynamic characteristics is a desirable task. The current study evaluated the potential of adding a wedge flap (WF) at the trailing edge of the NACA0021 airfoil. The effect of different WF heights and lengths on optimum height (L/H) on the aerodynamic performance and flow over the airfoil has been studied numerically using two-dimensional computational fluid dynamics simulation. The simulation solves the Reynolds-Averaged-Navier-Stokes with shear stress transport k-omega turbulent model. The results indicate that adding WF can effectively suppress flow separation and improve aerodynamic efficiency in all studied cases compared to clean airfoil. The aerodynamic performance is influenced significantly by the height of WF compared to the slight influence by the length at L/H < 1. Inclined WF achieves the highest lift and lift-to-drag values with total maximum increments of 71.67% and 45.79%, respectively, at optimum height and length with 6%c and 1%c, respectively, in comparison with the clean airfoil case. The results observed that WFs have advantages over the Gurney flaps discussed in this study. WF appears to be an effective passive flow control device that can be used in wind turbines if its dimensions are properly chosen.
引用
收藏
页码:1879 / 1899
页数:21
相关论文
共 48 条
  • [31] Neuhart D.H., 1988, NASA Technical Memorandum
  • [32] Impacts of Gurney flap and solidity on the aerodynamic performance of vertical axis wind turbines in array configurations
    Ni, Lulu
    Miao, Weipao
    Li, Chun
    Liu, Qingsong
    [J]. ENERGY, 2021, 215
  • [33] Control of a boundary layer over a wind turbine blade using distributed passive roughness
    Ozkan, Musa
    Erkan, Onur
    [J]. RENEWABLE ENERGY, 2022, 184 : 421 - 429
  • [34] Paraschivoiu I, 2002, WIND TURBINE DESIGN
  • [35] Ramlee MF., 2020, J COMPUT THEOR NANOS, V17, P833, DOI [10.1166/jctn.2020.8726, DOI 10.1166/JCTN.2020.8726]
  • [36] On the accuracy of turbulence models for CFD simulations of vertical axis wind turbines
    Rezaeiha, Abdolrahim
    Montazeri, Hamid
    Blocken, Bert
    [J]. ENERGY, 2019, 180 : 838 - 857
  • [37] Towards optimal aerodynamic design of vertical axis wind turbines: Impact of solidity and number of blades
    Rezaeiha, Abdolrahim
    Montazeri, Hamid
    Blocken, Bert
    [J]. ENERGY, 2018, 165 : 1129 - 1148
  • [38] Characterization of aerodynamic performance of vertical axis wind turbines: Impact of operational parameters
    Rezaeiha, Abdolrahim
    Montazeri, Hamid
    Blocken, Bert
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2018, 169 : 45 - 77
  • [39] Richter K, 2002, AERONAUT J, V106, P185
  • [40] LIFT ENHANCEMENT OF AN AIRFOIL USING A GURNEY FLAP AND VORTEX GENERATORS
    STORMS, BL
    JANG, CS
    [J]. JOURNAL OF AIRCRAFT, 1994, 31 (03): : 542 - 547