Vortex model of the aerodynamic wake of airborne wind energy systems

被引:1
|
作者
Trevisi, Filippo [1 ]
Riboldi, Carlo E. D. [1 ]
Croce, Alessandro [1 ]
机构
[1] Politecn Milan, Dept Aerosp Sci & Technol, Via La Masa 34, I-20156 Milan, Italy
关键词
KITE; GEN; OPTIMIZATION; PERFORMANCE; LIMIT;
D O I
10.5194/wes-8-999-2023
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Understanding and modeling the aerodynamic wake of airborne wind energy systems (AWESs) is crucial for estimating the performance and defining the design of such systems, as tight trajectories increase induced velocities and thus decrease the available power, while unnecessarily large trajectories increase power losses due to the gravitational potential energy exchange. The aerodynamic wake of crosswind AWESs flying circular trajectories is studied here with vortex methods. The velocities induced at the AWES from a generic helicoidal vortex filament, trailed by a position on the AWES wing, are modeled with an expression for the near vortex filament and one for the far vortex filament. The near vortex filament is modeled as the first half rotation of the helicoidal filament, with its axial component being neglected. The induced drag due to the near wake, built up from near vortex filaments, is found to be similar to the induced drag the AWES would have in forward flight. The far wake is modeled as two semi-infinite vortex ring cascades with opposite intensity. An approximate solution for the axial induced velocity at the AWES is given as a function of the radial (known) and axial (unknown) position of the vortex rings. An explicit and an implicit closure model are introduced to link the axial position of the vortex rings with the other quantities of the model. The aerodynamic model, using the implicit closure model for the far wake, is validated with the lifting-line free-vortex wake method implemented in QBlade. The model is suitable to be used in time-marching aero-servo-elastic simulations and in design and optimization studies.
引用
收藏
页码:999 / 1016
页数:18
相关论文
共 50 条
  • [1] Refining the airborne wind energy system power equations with a vortex wake model
    Trevisi, Filippo
    Riboldi, Carlo E. D.
    Croce, Alessandro
    WIND ENERGY SCIENCE, 2023, 8 (11) : 1639 - 1650
  • [2] Wake characteristics of pumping mode airborne wind energy systems
    Haas, T.
    De Schutter, J.
    Diehl, M.
    Meyers, J.
    WAKE CONFERENCE, 2019, 1256
  • [3] Aerodynamic model identification of an autonomous aircraft for airborne wind energy
    Licitra, Giovanni
    Buerger, Adrian
    Williams, Paul
    Ruiterkamp, Richard
    Diehl, Moritz
    OPTIMAL CONTROL APPLICATIONS & METHODS, 2019, 40 (03): : 422 - 447
  • [4] Aerodynamic Analysis and Optimization Of Wind Turbines Based On Full Free Vortex Wake Model
    Song Xiancheng
    Jiang, Chen
    Gang, Du
    Ji, Lucheng
    PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2013, VOL 8, 2013,
  • [5] Aerodynamic interference characteristics of multiple unit wind turbine based on vortex filament wake model
    Liu, Heng-xu
    Tian, Yi-nong
    Liu, Wei-qi
    Jin, Ye-qing
    Kong, Fan-kai
    Chen, Hai -long
    Zhong, Yu-guang
    ENERGY, 2023, 268
  • [6] Optimum aerodynamic design for wind turbine blade with a Rankine vortex wake
    Dias Do Rio Vaz, Deborah Aline Tavares
    Pinheiro Vaz, Jerson Rogerio
    Amarante Mesquita, Andre Luiz
    Pinho, Joao Tavares
    Brasil Junior, Antonio Cesar Pinho
    RENEWABLE ENERGY, 2013, 55 : 296 - 304
  • [7] Influence of vortex core size on aerodynamic calculation of wind turbine in free vortex wake method
    Xu B.
    Liu B.
    Feng J.
    Zuo L.
    Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 2019, 51 (05): : 1530 - 1537
  • [8] A reference model for airborne wind energy systems for optimization and control
    Malz, E. C.
    Koenemann, J.
    Sieberling, S.
    Gros, S.
    RENEWABLE ENERGY, 2019, 140 : 1004 - 1011
  • [9] Accuracy of the aerodynamic performance of wind turbines using vortex core models in the free vortex wake method
    Xu, Bofeng
    Liu, Bingbing
    Cai, Xin
    Yuan, Yue
    Zhao, Zhenzhou
    Wang, Yazhou
    JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2019, 11 (05)
  • [10] Aerodynamic analysis of Ampyx's airborne wind energy system
    Vimalakanthan, K.
    Caboni, M.
    Schepers, J. G.
    Pechenik, E.
    Williams, P.
    SCIENCE OF MAKING TORQUE FROM WIND (TORQUE 2018), 2018, 1037