PLoS ONE · 2012 · 106 citations · 24 references
EngineeringField RoboticsFlying RobotEnergy GainFlight ControlWandering AlbatrossesAvian EvolutionSystems EngineeringBio-inspired RoboticsKinematicsRobot LearningAvian LocomotionDynamic SoaringPropulsionAerial RoboticsAerospace EngineeringEvolutionary BiologyRobotic AircraftAerodynamics
Albatrosses do something that no other birds are able to do: fly thousands of kilometres at no mechanical cost. This is possible because they use dynamic soaring, a flight mode that enables them to gain the energy required for flying from wind. Until now, the physical mechanisms of the energy gain in terms of the energy transfer from the wind to the bird were mostly unknown. Here we show that the energy gain is achieved by a dynamic flight manoeuvre consisting of a continually repeated up-down curve with optimal adjustment to the wind. We determined the energy obtained from the wind by analysing the measured trajectories of free flying birds using a new GPS-signal tracking method yielding a high precision. Our results reveal an evolutionary adaptation to an extreme environment, and may support recent biologically inspired research on robotic aircraft that might utilize albatrosses' flight technique for engineless propulsion.
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EFFECTS OF SATELLITE TRANSMITTERS ON ALBATROSSES AND PETRELS
Richard A. Phillips, José C. Xavier, John P. Croxall · The Auk · 2003 · 540 citations
Biology, Breeding Behavior, Foraging +14
Satellite tracking of Wandering albatrosses
Pierre Jouventin, Henri Weimerskirch · Nature · 1990 · 517 citations
Long-term attachment of transmitting and recording devices to penguins and other seabirds
Rory P. Wdson, Klemens Piitz, G. Peters et al. · 1997 · 345 citations