Fluid-structure interaction simulation of an avian flight model

被引:13
|
作者
Ruck, Sebastian [1 ]
Oertel, Herbert, Jr. [1 ]
机构
[1] Karlsruhe Inst Technol, Inst Fluid Mech, Karlsruhe, Germany
来源
JOURNAL OF EXPERIMENTAL BIOLOGY | 2010年 / 213卷 / 24期
关键词
aerodynamics; flapping wings; wake structure; LEADING-EDGE VORTEX; WIND-TUNNEL; THRUSH NIGHTINGALE; TURBULENCE MODELS; COLUMBA-LIVIA; ANIMAL FLIGHT; SLOW FLIGHT; BAT FLIGHT; WIDE-RANGE; WAKE;
D O I
10.1242/jeb.041285
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
A three-dimensional numerical avian model was developed to investigate the unsteady and turbulent aerodynamic performance of flapping wings for varying wingbeat frequencies and flow velocities (up to 12Hz and 9m s(-1)), corresponding to a reduced frequency range of k=0.22 to k=1.0 and a Reynolds number range of Re=16,000 to Re=50,000. The wings of the bird-inspired model consist of an elastic membrane. Simplifying the complicated locomotion kinematics to a sinusoidal wing rotation about two axes, the main features of dynamic avian flight were approximated. Numerical simulation techniques of fluid-structure interaction (FSI) providing a fully resolved flow field were applied to calculate the aerodynamic performance of the flapping elastic wings with the Reynolds averaged Navier-Stokes (RANS) approach. The results were used to characterize and describe the macroscopic flow configurations in terms of starting, stopping, trailing and bound vortices. For high reduced frequencies up to k=0.67 it was shown that the wake does not consist of individual vortex rings known as the discrete vortex ring gait. Rather, the wake is dominated by a chain of elliptical vortex rings on each wing. The structures are interlocked at the starting and stopping vortices, which are shed in pairs at the reversal points of the wingbeat cycle. For decreasing reduced frequency, the results indicate a transition to a continuous vortex gait. The upstroke becomes more aerodynamically active, leading to a consistent circulation of the bound vortex on the wing and a continuous spanwise shedding of small scale vortices. The formation of the vortices shed spanwise in pairs at the reversal points is reduced and the wake is dominated by the tip and root vortices, which form long drawn-out vortex structures.
引用
收藏
页码:4180 / 4192
页数:13
相关论文
共 50 条
  • [1] Numerical Simulation Framework for Fluid-Structure Interaction of Flapping Flight
    Gong, Chunlin
    Fang, Zhe
    [J]. AIAA JOURNAL, 2021, 59 (09) : 3794 - 3798
  • [2] Fluid-structure interaction simulation of balance sensation in the avian lumbosacral organ
    Wold, Ethan
    Daley, Monica
    [J]. FASEB JOURNAL, 2019, 33
  • [3] A fluid-structure interaction model of insect flight with flexible wings
    Nakata, Toshiyuki
    Liu, Hao
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 2012, 231 (04) : 1822 - 1847
  • [4] Fluid-structure interaction in crash simulation
    Meywerk, M
    Decker, F
    Cordes, J
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2000, 214 (D7) : 669 - 673
  • [5] Parallel Fluid-Structure Interaction Simulation
    Chen, Meng-Huo
    [J]. COMPUTATIONAL SCIENCE, ICCS 2022, PT IV, 2022, : 297 - 309
  • [6] A particle model for fluid-structure interaction
    Cottet, GH
    [J]. COMPTES RENDUS MATHEMATIQUE, 2002, 335 (10) : 833 - 838
  • [7] A hybrid model for simulation of fluid-structure interaction in water entry problems
    Moradi, Hashem
    Rahbar Ranji, Ahmad
    Haddadpour, Hassan
    Moghadas, Hajar
    [J]. PHYSICS OF FLUIDS, 2021, 33 (01)
  • [8] Fluid-structure Interaction Simulation of Wind Turbine
    Lin, Donglong
    Pang, Zhao
    Zhang, Kexin
    You, Shuang
    [J]. ADVANCES IN MECHATRONICS AND CONTROL ENGINEERING III, 2014, 678 : 556 - +
  • [9] A FLUID-STRUCTURE INTERACTION SIMULATION OF FECAL INCONTINENCE
    Peng, Yun
    Neshatian, Leila
    Khavari, Rose
    Boone, Timothy
    Zhang, Yingchun
    [J]. JOURNAL OF UROLOGY, 2016, 195 (04): : E50 - E50
  • [10] Computational Fluid-Structure Interaction and Flow Simulation
    Bazilevs, Yuri
    Takizawa, Kenji
    [J]. COMPUTERS & FLUIDS, 2016, 141 : 1 - 1