Aerodynamics and fluid-structure interaction of an airfoil with actively controlled flexible leeward surface

被引:13
|
作者
He, Xi [1 ]
Guo, Qinfeng [1 ]
Xu, Yang [1 ]
Feng, Lihao [1 ]
Wang, Jinjun [1 ]
机构
[1] Beijing Univ Aeronaut & Astronaut, Fluid Mech Key Lab, Educ Minist, Beijing 100191, Peoples R China
基金
中国国家自然科学基金;
关键词
flow-structure interactions; membranes; MEMBRANE WINGS; SEPARATED FLOW; TRAILING-EDGE; AEROMECHANICS; PERFORMANCE; DECOMPOSITION; MECHANISMS; VORTICES; CAMBER;
D O I
10.1017/jfm.2022.1017
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Piezoelectric macro-fibre composite (MFC) actuators are employed onto the flexible leeward surface of an airfoil for active control. Time-resolved aerodynamic forces, membrane deformations and flow fields are synchronously measured at low Reynolds number (Re = 6 x 104). Mean aerodynamics show that the actively controlled airfoil can achieve lift-enhancement and drag-reduction simultaneously in the angle of attack range of 10 degrees < alpha < 14 degrees, where the rigid airfoil encounters stall. The maximum increments of lift and lift-to-drag ratio are 27.1 % and 126 % at the reduced actuation frequency of f+ = 3.52. The unsteady coupling features are further analysed at alpha = 12 degrees, where the maximum lift-enhancement occurs. It is newly discovered that the membrane vibrations and flow fields are locked into half of the actuation frequency when f+ > 3. The shift of the dominant vibration mode from bending to inclining is the reason for the novel "half-frequency lock-in' phenomenon. To the fluid-structure interaction, there are three characteristic frequencies for the actively controlled airfoil: St1 = 0.5f+, St2 = f+, and St3 = 1.5f+. Here, St1 and its harmonics (St2, St3) are coupled with the natural frequencies of the leading-edge shear layer, resulting in the generation of multi-scale flow structures and suppression of flow separation. The lift presents comparable dominant frequencies between St1 and St3, which means the instantaneous lift is determined by the flow structures of St1 and St3. The local membrane bulge and dent affect the instantaneous swirl strength of flow structures near the maximum vibration amplitude location, which is the main reason for the variation of instantaneous lift.
引用
收藏
页数:37
相关论文
共 50 条
  • [31] Fluid-structure interaction
    Technical Program Representative FSI
    ASME Pressure Vessels Piping Div. Publ. PVP, 2006,
  • [32] Fluid-structure interaction analysis of a piezoelectric flexible plate in a cavity filled with fluid
    Amini, Y. (aminiyaser@shirazu.ac.ir), 1600, Sharif University of Technology (23):
  • [33] Fluid-structure interaction analysis of a piezoelectric flexible plate in a cavity filled with fluid
    Amini, Y.
    Emdad, H.
    Farid, M.
    SCIENTIA IRANICA, 2016, 23 (02) : 559 - 565
  • [34] One-fluid formulation for fluid-structure interaction with free surface
    Yang, Liang
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2018, 332 : 102 - 135
  • [35] Fully Coupled Fluid-Structure Interaction with Heat Transfer Effects in an Adaptive NACA Airfoil
    Caccavale, Paolo
    Mele, Benedetto
    Brandizzi, Marco
    Ruocco, Gianpaolo
    FLUIDS, 2023, 8 (02)
  • [36] Characteristics of aerodynamics for an automobile by fluid-structure coupled method
    Hu X.-J.
    Hui Z.
    Guo P.
    Zhang Y.-H.
    Zhang J.-L.
    Wang J.-Y.
    Liu F.
    Jilin Daxue Xuebao (Gongxueban)/Journal of Jilin University (Engineering and Technology Edition), 2019, 49 (05): : 1414 - 1419
  • [37] Fluid-structure interaction of a flexible cantilever cylinder at low Reynolds numbers
    Heydari, Shayan
    Patankar, Neelesh A.
    Hartmann, Mitra J. Z.
    Jaiman, Rajeev K.
    PHYSICAL REVIEW FLUIDS, 2022, 7 (02)
  • [38] Numerical model for the fluid-structure interaction mechanics of a suspended flexible body
    Ueda, Tatsuyuki
    Nishi, Yoshiki
    OCEAN ENGINEERING, 2020, 195
  • [39] FLUID-STRUCTURE INTERACTION WITH FLEXIBLE MULTIBODY DYNAMICS AND SMOOTHED PARTICLE HYDRODYNAMICS
    Schoergenhumer, M.
    Seil, P.
    Pirker, S.
    Gerstmayr, J.
    PARTICLE-BASED METHODS III: FUNDAMENTALS AND APPLICATIONS, 2013, : 257 - 268
  • [40] Design of flexible wing for flapping flight by fluid-structure interaction analysis
    Hamamoto, M
    Ohta, Y
    Hara, K
    Hisada, T
    2005 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), VOLS 1-4, 2005, : 2253 - 2258