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The complex aerodynamic footprint of desert locusts revealed by large-volume tomographic particle image velocimetry
Author(s) -
Per Henningsson,
Dirk Michaelis,
Toshiyuki Nakata,
Daniel Schanz,
Reinhard Geisler,
Andreas Schröder,
Richard J. Bomphrey
Publication year - 2015
Publication title -
journal of the royal society interface
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.655
H-Index - 139
eISSN - 1742-5689
pISSN - 1742-5662
DOI - 10.1098/rsif.2015.0119
Subject(s) - particle image velocimetry , footprint , aerodynamics , volume (thermodynamics) , geology , particle tracking velocimetry , particle (ecology) , velocimetry , physics , remote sensing , mechanics , paleontology , turbulence , oceanography , quantum mechanics
Particle image velocimetry has been the preferred experimental technique with which to study the aerodynamics of animal flight for over a decade. In that time, hardware has become more accessible and the software has progressed from the acquisition of planes through the flow field to the reconstruction of small volumetric measurements. Until now, it has not been possible to capture large volumes that incorporate the full wavelength of the aerodynamic track left behind during a complete wingbeat cycle. Here, we use a unique apparatus to acquire the first instantaneous wake volume of a flying animal's entire wingbeat. We confirm the presence of wake deformation behind desert locusts and quantify the effect of that deformation on estimates of aerodynamic force and the efficiency of lift generation. We present previously undescribed vortex wake phenomena, including entrainment around the wing-tip vortices of a set of secondary vortices borne of Kelvin–Helmholtz instability in the shear layer behind the flapping wings.

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