Achieving hover equilibrium in free flight with a flexible flapping wing

被引:9
|
作者
Bluman, James [1 ,2 ]
Kang, Chang-kwon [1 ]
机构
[1] Univ Alabama, Dept Mech & Aerosp Engn, Huntsville, AL 35899 USA
[2] US Mil Acad, Civil & Mech Engn, 752 Thayer Rd, West Point, NY 10996 USA
关键词
Flexible flapping wings; Fluid structure-body interaction; Insect flight; Free flight simulation; Hover equilibrium; MICRO AIR VEHICLES; NAVIER-STOKES EQUATIONS; HAWKMOTH MANDUCA-SEXTA; INSECT FLIGHT; REYNOLDS-NUMBER; MODEL INSECTS; AERODYNAMIC FORCES; POWER REQUIREMENTS; FLEXURAL STIFFNESS; STABILITY;
D O I
10.1016/j.jfluidstructs.2017.08.011
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Recent discoveries in the fields of flapping wing aerodynamics and fluid-structure interaction have demonstrated that flexible wings can generate more lift than rigid wings. However, the implications of wing flexibility on the flight dynamics of flapping wing flyers is still an open research question. The main difficulty is that the free flight of flapping flyers with flexible wings is a result of the dynamic balance between unsteady aerodynamics, fluid-structure interaction, and flight dynamics. This study presents a fully coupled threeway flight simulator that solves the two-dimensional Navier-Stokes equations, tightly coupled to the Euler-Bernoulli beam equations of the wing and the nonlinear multi-body equations of motion for the dynamics at the fruit fly scale. A novel trim algorithm is used to determine the hover equilibrium in the longitudinal plane. The control inputs, i.e. the flapping amplitude, stroke plane angle, and flapping offset angle as well as the initial conditions are determined that effectively eliminate average body accelerations to less than 3% of gravitational acceleration. The resulting hover equilibrium control parameters flapping amplitude, stroke plane angle and the total power required agree well with the biological observation of fruit flies. Body oscillations in hovering free flight affect the flexible response of the wing compared to prescribed body motion without oscillation. The affected wing motion reduces the lift coefficient by up to 8.7% for the stiffest wing, necessitating slightly different control inputs to achieve trim. Finally, the power required to achieve hover equilibrium is 32%-94% lower for flexible wings than for rigid wings that are actively rotated to match the same passive pitch schedule. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:117 / 139
页数:23
相关论文
共 50 条
  • [1] Analysis of nonlinear aerodynamic performance and passive deformation of a flexible flapping wing in hover flight
    Chen, Long
    Yang, Feng Liu
    Wang, Yan Qing
    [J]. JOURNAL OF FLUIDS AND STRUCTURES, 2022, 108
  • [2] Optimization of Flexible Flapping-Wing Kinematics in Hover
    Gogulapati, A.
    Friedmann, P. P.
    Martins, J. R. R. A.
    [J]. AIAA JOURNAL, 2014, 52 (10) : 2342 - 2354
  • [3] Effect of flexibility on flapping wing characteristics in hover and forward flight
    Lee, Namhun
    Lee, Seungsoo
    Cho, Haeseong
    Shin, SangJoon
    [J]. COMPUTERS & FLUIDS, 2018, 173 : 111 - 117
  • [4] On unidirectional flight of a free flapping wing
    Vandenberghe, N
    Childress, S
    Zhang, J
    [J]. PHYSICS OF FLUIDS, 2006, 18 (01)
  • [5] Wing-wake interaction destabilizes hover equilibrium of a flapping insect-scale wing
    Bluman, James
    Kang, Chang-Kwon
    [J]. BIOINSPIRATION & BIOMIMETICS, 2017, 12 (04)
  • [6] Aerodynamic performance of flapping flexible wing in insect flight
    Nakata, Toshiyuki
    [J]. COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-MOLECULAR & INTEGRATIVE PHYSIOLOGY, 2009, 153A (02): : S50 - S52
  • [7] Achieving bioinspired flapping wing hovering flight solutions on Mars via wing scaling
    Bluman, James E.
    Pohly, Jeremy A.
    Sridhar, Madhu K.
    Kang, Chang-Kwon
    Landrum, David Brian
    Fahimi, Farbod
    Aono, Hikaru
    [J]. BIOINSPIRATION & BIOMIMETICS, 2018, 13 (04)
  • [8] Hover flight control of X-shaped flapping wing aircraft considering wing-tail interactions
    Jiao, Zongxia
    Wang, Liang
    Zhao, Longfei
    Jiang, Wuyao
    [J]. AEROSPACE SCIENCE AND TECHNOLOGY, 2021, 116
  • [9] Modeling and Hover Flight Control of a Micromechanical Flapping-Wing Aircraft Inspired by Wing-Tail Interaction
    Wang, Liang
    Jiang, Wuyao
    Zhao, Longfei
    Jiao, Zongxia
    [J]. IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2023, 28 (06) : 3132 - 3142
  • [10] Passively Stable Flapping Flight From Hover to Fast Forward Through Shift in Wing Position
    Koopmans, J. A.
    Tijmons, S.
    De Wagter, C.
    de Croon, G.
    [J]. INTERNATIONAL JOURNAL OF MICRO AIR VEHICLES, 2015, 7 (04) : 407 - 418