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Titlebook: Animal Locomotion; Graham K. Taylor,Michael S. Triantafyllou,Cameron Book 2010 Springer-Verlag Berlin Heidelberg 2010 Pitch.development.d

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楼主: antithetic
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Chundi Chen,Colin D. Meurk,Hui Chengas provided by PIV. The focus will be on the range of length and velocity scales characterised by the flight of large insects, birds, bats and small unmanned air vehicles, so that while viscous terms in the Navier-Stokes equations can many times be ignored in the quantitative analysis, understanding
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https://doi.org/10.1007/978-981-13-0571-9ndurance during prey catching or territory flights. While most insects such as flies, bees and wasps either reduced their hinds wings or mechanically coupled fore and hind wings, dragonflies have maintained two independent-controlled pairs of wings throughout their evolution. An extraordinary featur
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https://doi.org/10.1007/978-3-642-11633-9Pitch; development; dynamics; fish; fluid dynamics; vortices; fluid- and aerodynamics
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978-3-662-51972-1Springer-Verlag Berlin Heidelberg 2010
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Graham K. Taylor,Michael S. Triantafyllou,Cameron Reports recent experimental investigations into the physics of animal locomotion.Contributes to the applicability of the principles of animal flying and swimming to biomimetics.Written from the expert
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Swimming hydrodynamics: ten questions and the technical approaches needed to resolve theman robotic models help us understand locomotor dynamics of organisms? 9. How do propulsive surfaces interact hydrodynamically during natural motions? 10. What new computational approaches are needed to better understand locomotor hydrodynamics? These ten questions point, not exclusively, toward area
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Wake visualization of a heaving and pitching foil in a soap filmnvelope. The mechanism generates sinusoidal heave and pitch kinematics, pre-described by the non-dimensional heave amplitude (0-6), the pitch amplitude (0° − 90°), the phase difference between pitch and heave (0° - 360°), and the dimensionless wavelength of the foil (3-18). We obtained this wide ran
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