Investigation and Optimisation of High-Lift Airfoils for Airborne Wind Energy Systems at High Reynolds Numbers

被引:0
|
作者
Fischer, Denes [1 ]
Church, Benjamin [1 ]
Nayeri, Christian Navid [1 ]
Paschereit, Christian Oliver [1 ]
机构
[1] Tech Univ Berlin, Herrmann Fottinger Inst, Muller Breslau Str 8, D-10623 Berlin, Germany
来源
WIND | 2023年 / 3卷 / 02期
关键词
high-lift airfoils; airborne wind energy; S1223; optimisation; slat; numerical; experimental; PERFORMANCE;
D O I
10.3390/wind3020016
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The potential of airfoil optimisation for the specific requirements of airborne wind energy (AWE) systems is investigated. Experimental and numerical investigations were conducted at high Reynolds numbers for the S1223 airfoil and an optimised airfoil with thin slat. The optimised geometry was generated using the NSGA-II optimisation algorithm in conjunction with 2D-RANS simulations. The results showed that simultaneous optimisation of the slat and airfoil is the most promising approach. Furthermore, the choice of turbulence model was found to be crucial, requiring appropriate transition modeling to reproduce experimental data. The k-omega-SST-gamma-Re theta model proved to be most suitable for the geometries investigated. Wind tunnel experiments were conducted with high aspect ratio model airfoils, using a novel structural design, relying mostly on 3D-printed airfoil segments. The optimised airfoil and slat geometry showed significantly improved maximum lift and a shift of the maximum power factor to higher angles of attack, indicating good potential for use in AWE systems, especially at higher Reynolds numbers. The combined numerical and experimental approach proved to be very successful and the overall process a promising starting point for future optimisation and investigation of airfoils for AWE systems.
引用
收藏
页码:273 / 290
页数:18
相关论文
共 50 条
  • [21] Multidisciplinary design of high-lift systems
    Franke, Dirk Matthias
    DLR Deutsches Zentrum fur Luft- und Raumfahrt e.V. - Forschungsberichte, 2019, 2019-January (17): : 1 - 112
  • [22] Aerodynamic characteristics of elliptic airfoils at high Reynolds numbers
    Choi, Sungyoon
    Kwon, Oh Joon
    JOURNAL OF AIRCRAFT, 2008, 45 (02): : 641 - 650
  • [23] Application of Nonaxisymmetric Endwall Contouring to Conventional and High-Lift Turbine Airfoils
    Praisner, T. J.
    Allen-Bradley, E.
    Grover, E. A.
    Knezevici, D. C.
    Sjolander, S. A.
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2013, 135 (06):
  • [24] DEVELOPMENT OF ADVANCED CIRCULATION CONTROL WING HIGH-LIFT AIRFOILS.
    Englar, Robert J.
    Huson, Gregory G.
    Journal of Aircraft, 1984, 21 (07): : 476 - 483
  • [25] Application of Reynolds stress models to high-lift aerodynamics applications
    Grundestam, O
    Wallin, S
    Eliasson, P
    Johansson, AV
    Engineering Turbulence Modelling and Experiments 6, 2005, : 607 - 616
  • [26] Reynolds stress transport modeling for high-lift airfoil flows
    Chaouat, Bruno
    AIAA JOURNAL, 2006, 44 (10) : 2390 - 2403
  • [27] Numerical investigation of frequency-amplitude effects of dynamic morphing for a high-lift configuration at high Reynolds number
    Marouf, Abderahmane
    Tekap, Yannick Bmegaptche
    Simiriotis, Nikolaos
    To, Jean-Baptiste
    Rouchon, Jean-Francois
    Hoarau, Yannick
    Braza, Marianna
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2021, 31 (02) : 599 - 617
  • [28] On the Large-Eddy Simulation modelling of wind turbine dedicated airfoils at high Reynolds numbers
    Calafell, J.
    Lehmkuhl, O.
    Rodriguez, I.
    Oliva, A.
    THMT-12. PROCEEDINGS OF THE SEVENTH INTERNATIONAL SYMPOSIUM ON TURBULENCE, HEAT AND MASS TRANSFER, 2012, : 1419 - 1430
  • [29] Model high-lift airfoils with two constant-velocity segments on their contours
    Leont'ev V.G.
    Potashev A.V.
    Fluid Dynamics, 2001, 36 (6) : 866 - 870
  • [30] Redesign of High-Lift Low Pressure Turbine Airfoils for Low Speed Testing
    Marconcini, Michele
    Rubechini, Filippo
    Pacciani, Roberto
    Arnone, Andrea
    Bertini, Francesco
    JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2012, 134 (05):