[1] Kim D K, Kim H I, Han, J H, Kwon K J. Experimental investigation on the aerodynamic characteristics of a bio-mimetic flapping wing with macro-fiber composites. Journal of Intelligent Material Systems and Structures, 2008, 19, 423–431.
[2] Shyy W, Aono H, Chimakurthi S K, Trizila P, Kang CK, Cesnik C E S, Liu H. Recent progress in flapping wing aerodynamics and aeroelasticity. Progress in Aerospace Science, 2010, 46, 284–327.
[3] Taylor G K, Walker S M, Thomas A L R. Deformable wing kinematics in free-flying hoverflies. Journal of the Royal Society Interface, 2010, 7, 131–142.
[4] Ellington C P. The novel aerodynamics of insect flight: applications to micro-air-vehicles. Journal of Experimental Biology, 1999, 202, 3439–3448.
[5] Evans M R, Thomas A L R. The aerodynamic and mechanical effects of elongated tails in the scarlet-tufted malachite sunbird: measuring the cost of a handicap. Animal Behavior, 1992, 43, 337–347.
[6] Tobalske B W, Dial K P. Flight kinematics of black-billed magpies and pigeons over a wide range of speeds. Journal of Experimental Biology, 1996, 199, 263–280.
[7] Park K J, Rosén M, Hedenström A. Flight kinematics of the barn swallow (Hirundo rustica) over a wide range of speeds in a wind tunnel. Journal of Experimental Biology, 2001, 204, 2741–2750.
[8] Tobalske B W, Hedrick T L, Biewener A A. Wing kinematics of avian flight across speeds. Journal of Avian Biology, 2003, 34, 177–184.
[9] Warrick D R, Bundle M W, Dial K P. Bird maneuvering flight: blurred bodies, clear heads. Integrative and Comparative Biology, 2002, 42, 141–148.
[10] Hedrick T L, Usherwood J R, Biewener A A. Wing inertia and whole-body acceleration: an analysis of instantaneous aerodynamic force production in cockatiels (Nymphicus hollandicus) flying across a range of speeds. Journal of Experimental Biology, 2004, 207, 1689–1702.
[11] Grauer J A, Hubbard Jr J E. Inertial measurements from flight data of a flapping-wing ornithopter. Journal of Guidance Control and Dynamics, 2009, 32, 326–331.
[12] Taylor G K, Thomas A L R. Dynamic flight stability in the desert locust Schistrocerca gregaria. Journal of Experimental Biology, 2003, 206, 2803–2829.
[13] Usherwood J R, Hedrick T L, Mc Gowan C R, Biewener A A. Dynamic pressure maps for wings and tails of pigeons in slow, flapping flight, and their energetic implications. Journal of Experimental Biology, 2005, 208, 355–369.
[14] Hedrick T L, Usherwood J R, Biewener A A. Wing inertia and whole body acceleration: an analysis of instantaneous aerodynamic force production in cockatiels (Nymphicushollandicus) flying across a range of speeds. Journal of Experimental Biology, 2004, 207, 1689–1702.
[15] Gatesy S M, Dial K P. Tail muscle activity patterns in walking and flying pigeons (Columba livia). Journal of Experimental Biology, 1993, 176, 55–76.
[16] Berg A M, Biewener A A. Wing and body kinematics of takeoff and landing flight in the pigeon (Columba livia). Journal of Experimental Biology, 2010, 213, 1651–1658.
[17] Tobalske B W. Biomechanics of bird flight. Journal of Experimental Biology, 2007, 210, 3135–3146.
[18] Pfeiffer A T, Lee J S, Han J H, Horst B. Ornithopter flight simulation based on flexible multibody dynamics. Journal of Bionic Engineering, 2010, 7, 102–111.
[19] Lee J S, Kim J K, Kim D K, Han J H. Longitudinal flight dynamics of bioinspired ornithopter considering fluid- structure interaction. Journal of Guidance Control and Dynamics, 2011, 34, 667–677.
[20] De Laurier J D. An aerodynamic model for flapping-wing flight. Aeronautical Journal, 1993, 1853, 125–130.
[21] Kim D K, Lee J S, Han J H. Improved aerodynamic model for efficient analysis of flapping-wing flight. AIAA Journal, 2011, 49, 868–872.
[22] Hedrick T L, Cheng B, Deng X. Wingbeat time and the scaling of passive rotational damping in flapping flight. Science, 2009, 324, 252–255.
[23] Hesselberg T, Lehmann F O. Turning behaviour depends on frictional damping in the fruit fly Drosophila. Journal of Experimental Biology, 2007, 210, 4319–4334.
[24] Hedrick T L, Biewener A A. Low speed maneuvering flight of the rose-breasted cockatoo (Eolophus roseicapillus). I. Kinematic and neuromuscular control of turning. Journal of Experimental Biology, 2007, 210, 1897–1911.
[25] Hedrick T L, Usherwood J R, Biewener A A. Low speed maneuvering flight of the rose-breasted cockatoo (Eolophus roseicapillus). II. Inertial and aerodynamic reorientation. Journal of Experimental Biology, 2007, 210, 1912–1924.
[26] Taylor G K, Thomas A L R. Animal flight dynamics. II. Longitudinal stability in flapping flight. Journal of Theoretical Biology, 2002, 214, 351–370.
[27] Taylor G K, ?bikowski R. Nonlinear time-periodic models of the longitudinal flight dynamics of desert locusts Schistocerca gregaria. Journal of the Royal Society Interface, 2005, 2, 197–221.
|