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Research Article
Aerodynamics of gliding flight in common swifts
P. Henningsson, A. Hedenström
Journal of Experimental Biology 2011 214: 382-393; doi: 10.1242/jeb.050609
P. Henningsson
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  • For correspondence: per.henningsson@zoo.ox.ac.uk
A. Hedenström
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SUMMARY

Gliding flight performance and wake topology of a common swift (Apus apus L.) were examined in a wind tunnel at speeds between 7 and 11 m s–1. The tunnel was tilted to simulate descending flight at different sink speeds. The swift varied its wingspan, wing area and tail span over the speed range. Wingspan decreased linearly with speed, whereas tail span decreased in a nonlinear manner. For each airspeed, the minimum glide angle was found. The corresponding sink speeds showed a curvilinear relationship with airspeed, with a minimum sink speed at 8.1 m s–1 and a speed of best glide at 9.4 m s–1. Lift-to-drag ratio was calculated for each airspeed and tilt angle combinations and the maximum for each speed showed a curvilinear relationship with airspeed, with a maximum of 12.5 at an airspeed of 9.5 m s–1. Wake was sampled in the transverse plane using stereo digital particle image velocimetry (DPIV). The main structures of the wake were a pair of trailing wingtip vortices and a pair of trailing tail vortices. Circulation of these was measured and a model was constructed that showed good weight support. Parasite drag was estimated from the wake defect measured in the wake behind the body. Parasite drag coefficient ranged from 0.30 to 0.22 over the range of airspeeds. Induced drag was calculated and used to estimate profile drag coefficient, which was found to be in the same range as that previously measured on a Harris' hawk.

FOOTNOTES

  • This study was supported financially by grants from the Swedish Research Council and the Knut and Alice Wallenberg Foundation. A.H. is a Royal Swedish Academy of Science Research Fellow supported by grants from the Knut and Alice Wallenberg Foundation.

  • LIST OF SYMBOLS AND ABBREVIATIONS

    A
    measured wake area behind body
    AR
    wing aspect ratio
    bw
    wingspan
    bt
    tail span
    bt,wake
    tail wake span
    bw,max
    maximum wingspan
    bw,obs
    observed wingspan
    bw,wake
    wing wake span
    c
    mean wing chord
    CD
    drag coefficient
    CD,par
    parasite drag coefficient
    CD,pro
    profile drag coefficient
    CL
    lift coefficient
    D
    drag
    Dind
    induced drag
    Dpar
    parasite drag
    Dpro
    profile drag
    g
    gravitational acceleration
    k
    induced drag factor
    L
    lift
    Embedded Image
    mass flow rate
    m
    mass of the bird
    Re
    Reynolds number
    Sb
    body frontal area
    Sw
    wing area
    U
    airspeed
    U∝
    freestream flow
    Ub
    airspeed behind body
    Ubg
    airspeed of best glide
    Ums
    airspeed of minimum sink
    Us
    sink speed
    Utrue
    true airspeed
    W
    weight of the bird
    Γ
    circulation
    Γw
    average circulation of the wingtip vortex
    Γt
    average circulation of the tail vortex
    θ
    glide angle relative to horizontal
    ν
    kinematic viscosity
    ρ
    air density
    • © 2011.
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    Research Article
    Aerodynamics of gliding flight in common swifts
    P. Henningsson, A. Hedenström
    Journal of Experimental Biology 2011 214: 382-393; doi: 10.1242/jeb.050609
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    Research Article
    Aerodynamics of gliding flight in common swifts
    P. Henningsson, A. Hedenström
    Journal of Experimental Biology 2011 214: 382-393; doi: 10.1242/jeb.050609

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      • SUMMARY
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