The aerodynamics of avian take-off from direct pressure measurements in Canada geese (Branta canadensis)
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[1] A. Biewener,et al. In vivo strains in pigeon flight feather shafts: implications for structural design , 1998, The Journal of experimental biology.
[2] Mikael Rosén. Birds in the Flow: Flight Mechanics, Wake Dynamics and Flight Performance , 2003 .
[3] Geoffrey Spedding,et al. The wake of a jackdaw (Corvus monedula) in slow flight , 1986 .
[4] Gareth Jones,et al. Bird Flight Performance. A Practical Calculation Manual, C.J. Pennycuick. Oxford University Press, Oxford (1989), x, +153. Price £25 , 1990 .
[5] A. Biewener,et al. Comparative power curves in bird flight , 2003, Nature.
[6] Bret W. Tobalske,et al. Biomechanics and Physiology of Gait Selection in Flying Birds* , 2000, Physiological and Biochemical Zoology.
[7] C. Ellington. The Aerodynamics of Hovering Insect Flight. VI. Lift and Power Requirements , 1984 .
[8] Anders Hedenström,et al. Quantitative studies of the wakes of freely flying birds in a low-turbulence wind tunnel , 2003 .
[9] Vance A. Tucker. A 4 g, battery-powered, data logger accelerometer for free-flying birds , 1999 .
[10] W. Kenchington. Animal mechanics , 1950, Nature.
[11] R. Dudley,et al. Flight physiology of migrating Urania fulgens (Uraniidae) moths: kinematics and aerodynamics of natural free flight , 1990, Journal of Comparative Physiology A.
[12] T. Weis-Fogh. Energetics of Hovering Flight in Hummingbirds and in Drosophila , 1972 .
[13] T. Kunz,et al. The cost of hovering and forward flight in a nectar-feeding bat, Glossophaga soricina, estimated from aerodynamic theory. , 1993, The Journal of experimental biology.
[14] Wake structure and force generation in avian flapping flight , 1992 .
[15] Jmv Rayner,et al. Momentum and energy in the wake of a pigeon (Columba livia) in slow flight , 1984 .
[16] A. Biewener,et al. PECTORALIS MUSCLE FORCE AND POWER OUTPUT DURING DIFFERENT MODES OF FLIGHT IN PIGEONS (COLUMBA LIVIA) , 1993 .
[17] U. M. Norberg,et al. Aerodynamics of hovering flight in the long-eared bat Plecotus auritus. , 1976, The Journal of experimental biology.
[18] C. Pennycuick,et al. Elastic energy storage in primary feather shafts. , 1976, The Journal of experimental biology.
[19] A Hedenström,et al. A family of vortex wakes generated by a thrush nightingale in free flight in a wind tunnel over its entire natural range of flight speeds , 2003, Journal of Experimental Biology.
[20] S. Gatesy,et al. Bipedal locomotion: effects of speed, size and limb posture in birds and humans , 1991 .
[21] A. Biewener,et al. Estimates of circulation and gait change based on a three-dimensional kinematic analysis of flight in cockatiels (Nymphicus hollandicus) and ringed turtle-doves (Streptopelia risoria). , 2002, The Journal of experimental biology.
[22] J. Usherwood,et al. The aerodynamics of revolving wings I. Model hawkmoth wings. , 2002, The Journal of experimental biology.
[23] R. Marsh,et al. The mechanical power output of the flight muscles of blue-breasted quail (Coturnix chinensis) during take-off. , 2001, The Journal of experimental biology.
[24] A. Biewener,et al. Mechanical power output of bird flight , 1997, Nature.
[25] G. Spedding. The Wake of a Kestrel (Falco Tinnunculus) in Flapping Flight , 1987 .
[26] Berg,et al. The moment of inertia of bird wings and the inertial power requirement for flapping flight , 1995, The Journal of experimental biology.