Large aerodynamic forces on a sweeping wing at low Reynolds number

被引:0
|
作者
Sun Mao
Wu Jianghao
机构
[1] Beijing University of Aeronautics & Astronautics,Institute of Fluid Mechanics
关键词
model insect wing; sweeping motion; high lift; leading-edge-vortex;
D O I
10.1007/BF02484241
中图分类号
学科分类号
摘要
The aerodynamic forces and flow structure of a model insect wing is studied by solving the Navier-Stokes equations numerically. After an initial start from rest, the wing is made to execute an azimuthal rotation (sweeping) at a large angle of attack and constant angular velocity. The Reynolds number (Re) considered in the present note is 480 (Re is based on the mean chord length of the wing and the speed at 60% wing length from the wing root). During the constant-speed sweeping motion, the stall is absent and large and approximately constant lift and drag coefficients can be maintained. The mechanism for the absence of the stall or the maintenance of large aerodynamic force coefficients is as follows. Soon after the initial start, a vortex ring, which consists of the leading-edge vortex (LEV), the starting vortex, and the two wing-tip vortices, is formed in the wake of the wing. During the subsequent motion of the wing, a base-to-tip spanwise flow converts the vorticity in the LEV to the wing tip and the LEV keeps an approximately constant strength. This prevents the LEV from shedding. As a result, the size of the vortex ring increases approximately linearly with time, resulting in an approximately constant time rate of the first moment of vorticity, or approximately constant lift and drag coefficients. The variation of the relative velocity along the wing span causes a pressure gradient along the wingspan. The base-to-tip spanwise flow is mainly maintained by the pressure-gradient force.
引用
收藏
页码:24 / 31
页数:7
相关论文
共 50 条
  • [41] Low Reynolds number multirotor aerodynamic wake interactions
    Dhwanil Shukla
    Narayanan Komerath
    Experiments in Fluids, 2019, 60
  • [42] Aerodynamic Impact of Aspect Ratio at Low Reynolds Number
    Traub, Lance W.
    JOURNAL OF AIRCRAFT, 2013, 50 (02): : 626 - 634
  • [43] Aerodynamic hysteresis of a low-Reynolds-number airfoil
    Hu, Hui
    Yang, Zifeng
    Igarashi, Hirofumi
    JOURNAL OF AIRCRAFT, 2007, 44 (06): : 2083 - 2086
  • [44] Aerodynamic characteristics of an elliptic airfoil at low Reynolds number
    Kwon, K
    Park, SO
    JOURNAL OF AIRCRAFT, 2005, 42 (06): : 1642 - 1644
  • [45] Numerical Study of Low Reynolds Number Flapping Wing
    Cao, Da-Min
    Lv, Hong-Yan
    Yang, Lu-Hui
    PROCEEDINGS OF THE 3RD ANNUAL INTERNATIONAL CONFERENCE ON MECHANICS AND MECHANICAL ENGINEERING (MME 2016), 2017, 105 : 931 - 938
  • [46] Propulsion velocity of a flapping wing at low Reynolds number
    Lee, JiSeok
    Seo, InSoo
    Lee, SangHwan
    JOURNAL OF FLUIDS AND STRUCTURES, 2015, 54 : 422 - 439
  • [47] Characterization of the Effects of Wing Sweep at Low Reynolds Number
    Nudson, Hunter
    Stanfield-Brown, Davy
    Bennett, Kylee
    Traub, Lance W.
    JOURNAL OF AIRCRAFT, 2025,
  • [48] Numerical Study of the Influence of the Critical Reynolds Number on the Aerodynamic Characteristics of the Wing Airfoil
    Utkina, Anna
    Kozelkov, Andrey
    Zhuchkov, Roman
    Strelets, Dmitry
    FLUIDS, 2023, 8 (10)
  • [49] Aerodynamic Numerical Analysis of the Low Reynolds Number Diamond Joined-Wing Configuration Unmanned Aerial Vehicle
    Junlei Sun
    Heping Wang
    Zhou Zhou
    Shan Lei
    International Journal of Aeronautical and Space Sciences, 2018, 19 : 544 - 562
  • [50] Aerodynamic Numerical Analysis of the Low Reynolds Number Diamond Joined-Wing Configuration Unmanned Aerial Vehicle
    Sun, Junlei
    Wang, Heping
    Zhou, Zhou
    Lei, Shan
    INTERNATIONAL JOURNAL OF AERONAUTICAL AND SPACE SCIENCES, 2018, 19 (03) : 544 - 562