Large-eddy simulation of blade-turbulence interaction in a cyclorotor system

被引:1
|
作者
Saito, Manabu [1 ]
Nagao, Jun [1 ]
Yamada, Takuto [1 ]
Pillai, Abhishek Lakshman [1 ]
Kurose, Ryoichi [1 ]
机构
[1] Kyoto Univ, Dept Mech Engn & Sci, Nishikyo Ku, Kyoto 6158540, Japan
关键词
Large-eddy simulation; Cyclorotor; Immersed boundary method; VTOL aircraft; Urban air mobility; CYCLOIDAL ROTOR; NUMERICAL-SIMULATION; PERFORMANCE; SEPARATION; FLOWS; MODEL;
D O I
10.1016/j.ast.2024.108921
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Cyclorotor is a propulsion system that has multiple blades rotating around an axis parallel to the blades' spanwise direction, alternately playing roles in both suction (upper) and blowing (lower) sides of the cyclorotor. To investigate how the mechanism of the interactions between the blade -induced turbulence and the cyclorotor's components, such as the blades and the shaft, affect the overall aerodynamic performance of a cyclorotor, largeeddy simulations (LES) are conducted. This study is performed for a cyclorotor comprising six NACA0010 blades that rotate at 800 rpm with a maximum angle of attack of 20 degrees. The results show that the downwash generated by the upper blades of a cyclorotor intensely interacts with the lower blades, reducing some of the thrust generation. This effect peaks at the lower side of the cyclorotor where the angle of attack of the passing blade is the largest and is expected to generate the most thrust. Also, when the shaft is present, it interacts with the downwash generated by the upper blades and alters the trajectory of the downwash towards the lower blades, which increases the overall thrust generation of the blades alone. However, the drag produced by the shaft outperforms the increased thrust by the blades, which consequently generates less total thrust than the cyclorotor without the shaft.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Numerical investigation of effects of blade-tip and number of blades in a cyclorotor system using large-eddy simulation
    Saito, Manabu
    Kurose, Ryoichi
    AEROSPACE SCIENCE AND TECHNOLOGY, 2025, 158
  • [2] Large-eddy simulation of the shock turbulence interaction
    Ducros, F
    Ferrand, V
    Nicoud, F
    Weber, C
    Darracq, D
    Gacherieu, C
    Poinsot, T
    JOURNAL OF COMPUTATIONAL PHYSICS, 1999, 152 (02) : 517 - 549
  • [3] Forced turbulence in large-eddy simulation of compressible magnetohydrodynamic turbulence
    Chernyshov, A. A.
    Karelsky, K. V.
    Petrosyan, A. S.
    PHYSICS OF PLASMAS, 2010, 17 (10)
  • [4] Large-eddy simulation of flow turbulence in clarification systems
    Li, Haochen
    Balachandar, S.
    Sansalone, John
    ACTA MECHANICA, 2021, 232 (04) : 1389 - 1412
  • [5] An anisotropic synthetic turbulence method for Large-Eddy Simulation
    Auerswald, Torsten
    Probst, Axel
    Bange, Jens
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2016, 62 : 407 - 422
  • [6] IMPLICIT LARGE-EDDY SIMULATION OF TRANSITION AND TURBULENCE DECAY
    Grinstein, Fernando F.
    PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2019, VOL 5, 2019,
  • [7] Large-eddy simulation of decaying isotropic turbulence using the flowfield dependent variation method
    Olatoyinbo, Seyi F.
    Rani, Sarma L.
    Frendi, Abdelkader
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2017, 27 (01) : 235 - 262
  • [8] A wavelet-based multiresolution approach to large-eddy simulation of turbulence
    Plata, M. de la Llave
    Cant, R. S.
    JOURNAL OF COMPUTATIONAL PHYSICS, 2010, 229 (20) : 7715 - 7738
  • [9] Intensity of thunderstorm- generated turbulence revealed by large-eddy simulation
    Lane, Todd P.
    Sharman, Robert D.
    GEOPHYSICAL RESEARCH LETTERS, 2014, 41 (06) : 2221 - 2227
  • [10] Discrete filters for large-eddy simulation of forced compressible magnetohydrodynamic turbulence
    Chernyshov, A. A.
    Petrosyan, A. S.
    PHYSICA SCRIPTA, 2016, 91 (06)