Aeroelastic analysis of wind turbines using a tightly coupled CFD-CSD method

被引:44
|
作者
Carrion, M. [1 ]
Steijl, R. [1 ]
Woodgate, M. [1 ]
Barakos, G. N. [1 ]
Munduate, X. [2 ]
Gomez-Iradi, S. [2 ]
机构
[1] Univ Liverpool, Sch Engn, Computat Fluid Dynam Lab, Liverpool L69 3GH, Merseyside, England
[2] Natl Renewable Energy Ctr Spain, Sarriguren 31621, Navarra, Spain
关键词
MEXICO wind turbine; NREL Phase VI wind turbine; Aeroelasticity; CFD-CSD coupling; Flapping modes; PART II; MODEL; BLADES; AERODYNAMICS; COMPUTATIONS; SIMULATION; AIRFOILS; ROTORS;
D O I
10.1016/j.jfluidstructs.2014.06.029
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This paper presents aeroelastic analyses of wind turbines, using the compressible flow Helicopter Multi-Block (HMB2) solver of Liverpool University, coupled with a Computational Structural Dynamics method. For this study, the MEXICO and NREL Phase VI wind turbines were employed. A static aeroelastic method was first employed for the analysis of the MEXICO blade and the effect of the torsional stiffness was studied at 10,15 and 24 m/s axial wind speeds. The torsional deformations showed strong dependency on this parameter and the blade region from mid-span to the tip was the most susceptible to aeroelastic effects. The work progressed by studying both the static and dynamic response on the NREL wind turbine, where the nacelle and the tower were considered. Mean deflections between the static and dynamic methods showed consistency and, due to the structural properties of this blade, flapping modes were dominant. The dynamic aeroelastic method enabled an assessment of the effect of flapping on the blade loads, in conjunction with the effect of tower. Aeroelastic effects were found to be secondary for the MEXICO blade, but had a stronger effect on the larger NREL Phase VI blade. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:392 / 415
页数:24
相关论文
共 50 条
  • [31] Aeroelastic analysis of wind turbines applying 3D CFD computational results
    Streiner, S.
    Kraemer, E.
    Eulitz, A.
    Armbruster, P.
    SCIENCE OF MAKING TORQUE FROM WIND, 2007, 75
  • [32] A High-fidelity Computational Aeroelastic Method Based on CFD/CSD
    Chen, Zhaotao
    Sun, Qin
    PROCEEDINGS OF THE SECOND INTERNATIONAL CONFERENCE ON MODELLING AND SIMULATION (ICMS2009), VOL 3, 2009, : 216 - 219
  • [33] Static Aeroelastic Analysis of Composite Wings with a Large Aspect Ratio Based on the CFD/CSD Method
    Qiao S.-J.
    Jiao J.
    Ni Y.-G.
    Liu X.
    Journal of Aeronautics, Astronautics and Aviation, 2021, 53 (03): : 415 - 428
  • [34] CFD/CSD coupled analysis method for wind-induced vibration responses of TLCD-structure system
    Huang, Peng
    Wu, Jiurong
    Fu, Jiyang
    Sun, Hanyang
    Wang, Jialei
    Zhendong yu Chongji/Journal of Vibration and Shock, 2024, 43 (11):
  • [35] CFD/CSD Fully Implicit Tightly Coupled Studyon Limit Cycle Flutter of Wing
    Huang J.
    Yao W.
    Jiang Z.
    Zhou D.
    Zhendong Ceshi Yu Zhenduan/Journal of Vibration, Measurement and Diagnosis, 2020, 40 (03): : 494 - 500
  • [36] Aeroelastic stability analysis of wind turbines using an eigen value approach
    Hansen, MH
    WIND ENERGY, 2004, 7 (02) : 133 - 143
  • [37] Computation analyses of aeroelastic loads of rotor based on CFD/CSD coupling method
    Ma L.
    Zhao Q.
    Zhao M.
    Wang B.
    Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica, 2017, 38 (06):
  • [38] COUPLED ROTOR-TOWER AEROELASTIC ANALYSIS OF LARGE HORIZONTAL AXIS WIND TURBINES
    WARMBRODT, W
    FRIEDMANN, P
    AIAA JOURNAL, 1980, 18 (09) : 1118 - 1124
  • [39] Analysis on the Aeroelastic Stability of Open Cylindrical Shells in Subsonic Airflow Using the Theoretical and Two-way CFD/CSD Coupled Methods
    Chai, Yu-Yang
    Li, Feng-Ming
    Song, Zhi-Guang
    INTERNATIONAL JOURNAL OF ACOUSTICS AND VIBRATION, 2019, 24 (03): : 408 - 417
  • [40] Development of Accelerated CFD/CSD Coupling Nonlinear Static Aeroelastic Algorithm Using Vortex Lattice Method
    Zou, Zhicheng
    Xie, Changchuan
    An, Chao
    Yang, Lan
    Ni, Zao
    AIAA JOURNAL, 2025,