Biofluiddynamic scaling of flapping, spinning and translating fins and wings
暂无分享,去创建一个
[1] O. Reynolds. III. An experimental investigation of the circumstances which determine whether the motion of water shall be direct or sinuous, and of the law of resistance in parallel channels , 1883, Proceedings of the Royal Society of London.
[2] G. Batchelor,et al. An Introduction to Fluid Dynamics , 1968 .
[3] J. Lumley,et al. A First Course in Turbulence , 1972 .
[4] T. B. Putsyata,et al. Analytical dynamics , 1973 .
[5] T. Weis-Fogh. Quick estimates of flight fitness in hovering animals , 1973 .
[6] F. White. Viscous Fluid Flow , 1974 .
[7] T. Maxworthy. Experiments on the Weis-Fogh mechanism of lift generation by insects in hovering flight. Part 1. Dynamics of the ‘fling’ , 1979, Journal of Fluid Mechanics.
[8] C. Ellington. The Aerodynamics of Hovering Insect Flight. I. The Quasi-Steady Analysis , 1984 .
[9] J. Anderson,et al. Fundamentals of Aerodynamics , 1984 .
[10] P. Dejours,et al. Comparative physiology : life in water and on land , 1987 .
[11] A. Roshko,et al. Vortex formation in the wake of an oscillating cylinder , 1988 .
[12] Akira Azuma,et al. Flight performance of rotary seeds , 1989 .
[13] M. Triantafyllou,et al. Optimal Thrust Development in Oscillating Foils with Application to Fish Propulsion , 1993 .
[14] M. Dickinson,et al. UNSTEADY AERODYNAMIC PERFORMANCE OF MODEL WINGS AT LOW REYNOLDS NUMBERS , 1993 .
[15] J. Vanyo. Rotating Fluids in Engineering and Science , 1993 .
[16] Dickinson,et al. THE EFFECTS OF WING ROTATION ON UNSTEADY AERODYNAMIC PERFORMANCE AT LOW REYNOLDS NUMBERS , 1994, The Journal of experimental biology.
[17] Charles H. K. Williamson,et al. Vortex Dynamics in the Wake of a Cylinder , 1995 .
[18] Adrian L. R. Thomas,et al. Leading-edge vortices in insect flight , 1996, Nature.
[19] J. Spurk. Boundary Layer Theory , 2019, Fluid Mechanics.
[20] S. Vogel,et al. Life in Moving Fluids , 2020 .
[21] K. Kawachi,et al. A Numerical Study of Insect Flight , 1998 .
[22] M. Dickinson,et al. Wing rotation and the aerodynamic basis of insect flight. , 1999, Science.
[23] Z. J. Wang. Vortex shedding and frequency selection in flapping flight , 2000, Journal of Fluid Mechanics.
[24] Michael S. Selig,et al. The effect of rotation on the boundary layer of a wind turbine blade , 2000 .
[25] Z. J. Wang. Two dimensional mechanism for insect hovering , 2000 .
[26] M. Dickinson,et al. The control of flight force by a flapping wing: lift and drag production. , 2001, The Journal of experimental biology.
[27] J. Vermant,et al. Physical Hydrodynamics , 2002 .
[28] Mao Sun,et al. Lift and power requirements of hovering flight in Drosophila virilis. , 2002, The Journal of experimental biology.
[29] J. Usherwood,et al. The aerodynamics of revolving wings I. Model hawkmoth wings. , 2002, The Journal of experimental biology.
[30] D. Lentink,et al. Influence of Airfoil Shape on Performance in Insect Flight , 2003 .
[31] S. N. Fry,et al. The Aerodynamics of Free-Flight Maneuvers in Drosophila , 2003, Science.
[32] Adrian L. R. Thomas,et al. Flying and swimming animals cruise at a Strouhal number tuned for high power efficiency , 2003, Nature.
[33] James L. Tangler,et al. Insight into Wind Turbine Stall and Post-stall Aerodynamics , 2004 .
[34] C. Lindenburg,et al. MODELLING OF ROTATIONAL AUGMENTATION BASED ON ENGINEERING CONSIDERATIONS AND MEASUREMENTS , 2004 .
[35] Vladimir Cardos,et al. Rotational Effects on the Boundary-Layer Flow in Wind Turbines , 2004 .
[36] M. Dickinson,et al. The effect of advance ratio on the aerodynamics of revolving wings , 2004, Journal of Experimental Biology.
[37] M. Dickinson,et al. Force production and flow structure of the leading edge vortex on flapping wings at high and low Reynolds numbers , 2004, Journal of Experimental Biology.
[38] C. Tan,et al. Internal Flow: Concepts and Applications , 2004 .
[39] S. P. Roberts,et al. Short-amplitude high-frequency wing strokes determine the aerodynamics of honeybee flight. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[40] Fernando L. Ponta,et al. Vortex synchronization regions in shedding from an oscillating cylinder , 2005 .
[41] Tatjana Y. Hubel. Untersuchungen zur instationären Aerodynamik an einem vogelähnlichen Flügelschlagmodell , 2007 .
[42] T.. Experiments on the Weis-Fogh mechanism of lift generation by insects in hovering flight. Part 1. Dynamics of the fling , 2007 .
[43] C. J. Clark,et al. Three-dimensional kinematics of hummingbird flight , 2007, Journal of Experimental Biology.
[44] D. Lentink,et al. Vortex-wake interactions of a flapping foil that models animal swimming and flight , 2008, Journal of Experimental Biology.
[45] Promode R. Bandyopadhyay,et al. Biorobotic insights into how animals swim , 2008, Journal of Experimental Biology.
[46] M. Dickinson,et al. Rotational accelerations stabilize leading edge vortices on revolving fly wings , 2009, Journal of Experimental Biology.