A review of aerodynamic studies on dragonfly flight
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Elham Montazer | Erfan Salami | Nik Nazri Nik Ghazali | Thomas A Ward | N. Ghazali | E. Salami | Elham Montazer | Thomas A. Ward | E. Montazer | T. Ward
[1] T. Weis-Fogh. Quick estimates of flight fitness in hovering animals , 1973 .
[2] W. Nachtigall,et al. Insects in flight : a glimpse behind the scenes in biophysical research , 1974 .
[3] R. Norberg. Hovering Flight of the Dragonfly Aeschna Juncea L., Kinematics and Aerodynamics , 1975 .
[4] M. May,et al. Thermoregulation and adaptation to temperature in dragonflies (Odonata : Anisoptera) , 1976 .
[5] C. Somps,et al. Dragonfly Flight: Novel Uses of Unsteady Separated Flows , 1985, Science.
[6] A. Azuma,et al. Flight Performance of a Dragonfly , 1988 .
[7] G. Rüppell. Kinematic Analysis of Symmetrical Flight Manoeuvres of Odonata , 1989 .
[8] Peter Freymuth,et al. Thrust generation by an airfoil in hover modes , 1990 .
[9] M. May. Dragonfly Flight: Power Requirements at High Speed and Acceleration , 1991 .
[10] May. Dependence of flight behavior and heat production on air temperature in the green darner dragonfly Anax junius (Odonata: Aeshnidae) , 1995, The Journal of experimental biology.
[11] J. Wakeling,et al. Dragonfly flight. I. Gliding flight and steady-state aerodynamic forces. , 1997, The Journal of experimental biology.
[12] J. Wakeling,et al. Dragonfly flight. II. Velocities, accelerations and kinematics of flapping flight. , 1997, The Journal of experimental biology.
[13] Shigeru Sunada,et al. Airfoil Section Characteristics at a Low Reynolds Number , 1997 .
[14] K. Kawachi,et al. A Numerical Study of Insect Flight , 1998 .
[15] Thomas J Mueller,et al. Aerodynamic Measurements at Low Raynolds Numbers for Fixed Wing Micro-Air Vehicles , 2000 .
[16] Z. J. Wang. Two dimensional mechanism for insect hovering , 2000 .
[17] Mao Sun,et al. Aerodynamic interactions of two airfoils in unsteady motion , 2001 .
[18] Thomas J. Mueller,et al. Fixed and Flapping Wing Aerodynamics for Micro Air Vehicle Applications , 2001 .
[19] T. Mueller. Analysis and Design of Airfoils for Use at Ultra-Low Reynolds Numbers , 2001 .
[20] Chunyong Yin,et al. Measuring wing kinematics, flight trajectory and body attitude during forward flight and turning maneuvers in dragonflies , 2003, Journal of Experimental Biology.
[21] Mao Sun,et al. A computational study of the aerodynamic forces and power requirements of dragonfly (Aeschna juncea) hovering , 2004, Journal of Experimental Biology.
[22] Adrian L. R. Thomas,et al. Dragonfly flight: free-flight and tethered flow visualizations reveal a diverse array of unsteady lift-generating mechanisms, controlled primarily via angle of attack , 2004, Journal of Experimental Biology.
[23] Z. J. Wang,et al. The role of drag in insect hovering , 2004, Journal of Experimental Biology.
[24] K. Isogai,et al. Unsteady Three -Dimensional Viscous Flow Simulation of a Dragonfly Hovering , 2004 .
[25] Mao Sun,et al. A computational study of the aerodynamics and forewing-hindwing interaction of a model dragonfly in forward flight , 2005, Journal of Experimental Biology.
[26] Manabu Yamamoto,et al. Direct Measurement of Unsteady Fluid Dynamic Forces for a Hovering Dragonfly , 2005 .
[27] M. Yamamoto. Measurement of unsteady fluid dynamic force for a mechanical dragonfly model , 2005 .
[28] Mao Sun,et al. Dragonfly Forewing-Hindwing Interaction at Various Flight Speeds and Wing Phasing , 2007 .
[29] Z. J. Wang,et al. Effect of forewing and hindwing interactions on aerodynamic forces and power in hovering dragonfly flight. , 2007, Physical review letters.
[30] Sam Heathcote,et al. Flexible flapping airfoil propulsion at low Reynolds numbers , 2005 .
[31] S C Burgess,et al. Design of a parallel crank-rocker flapping mechanism for insect-inspired micro air vehicles , 2007 .
[32] Ille C. Gebeshuber,et al. An attempt to reveal synergies between biology and mechanical engineering , 2008 .
[33] John Young,et al. Simulation and Parameter Variation of Flapping-Wing Motion Based on Dragonfly Hovering , 2008 .
[34] Haibo Dong,et al. A computational study of the aerodynamic performance of a dragonfly wing section in gliding flight , 2008, Bioinspiration & biomimetics.
[35] Fritz-Olaf Lehmann,et al. Phasing of dragonfly wings can improve aerodynamic efficiency by removing swirl , 2008, Journal of The Royal Society Interface.
[36] Sam Heathcote,et al. Effect of Spanwise Flexibility on Flapping Wing Propulsion , 2006 .
[37] Xinyan Deng,et al. Aerodynamics of dragonfly flight and robotic design , 2009, 2009 IEEE International Conference on Robotics and Automation.
[38] Jie Zhang,et al. Aerodynamic performance due to forewing and hindwing interaction in gliding dragonfly flight. , 2009, Physical review. E, Statistical, nonlinear, and soft matter physics.
[39] A. Seifert,et al. Simplified dragonfly airfoil aerodynamics at Reynolds numbers below 8000 , 2009 .
[40] A. Seifert,et al. Parameter study of simplified dragonfly airfoil geometry at Reynolds number of 6000. , 2010, Journal of theoretical biology.
[41] Chin-Chou Chu,et al. Unsteady aerodynamics of dragonfly using a simple wing–wing model from the perspective of a force decomposition , 2010, Journal of Fluid Mechanics.
[42] Dirk Schönweitz,et al. Vortex interaction of tandem pitching and plunging plates: a two-dimensional model of hovering dragonfly-like flight , 2011, Bioinspiration & biomimetics.
[43] K. Isogai,et al. Effects of Flapping Wing Kinematics on Hovering and Forward Flight Aerodynamics , 2011 .
[44] C. Tropea,et al. Recovery of Energy from Leading- and Trailing-Edge Vortices in Tandem-Airfoil Configurations , 2011 .
[45] Tim Lee,et al. Flow past two in-tandem airfoils undergoing sinusoidal oscillations , 2011 .
[46] Yongsheng Lian,et al. Numerical Investigation of Energy Extraction in a Tandem Flapping Wing Configuration , 2012 .
[47] Timothy M. Broering,et al. The effect of phase angle and wing spacing on tandem flapping wings , 2012 .
[48] G. Shen,et al. Experimental investigation on the wing-wake interaction at the mid stroke in hovering flight of dragonfly , 2012 .
[49] Muhammad R. Hajj,et al. Effect of the aerodynamic-induced parametric excitation on the longitudinal stability of hovering MAVs/insects , 2014 .
[50] T. Inamuro,et al. Free flight simulations of a dragonfly-like flapping wing-body model using the immersed boundary-lattice Boltzmann method , 2014 .
[51] Xinyan Deng,et al. Aerodynamic interaction between forewing and hindwing of a hovering dragonfly , 2014 .
[52] Weixi Huang,et al. Vortex interactions between forewing and hindwing of dragonfly in hovering flight , 2015 .
[53] Sevak Tahmasian,et al. The need for higher-order averaging in the stability analysis of hovering, flapping-wing flight , 2015, Bioinspiration & biomimetics.
[54] Pieter van Dokkum. Dragonflies: Magnificent Creatures of Water, Air, and Land , 2015 .
[55] Chinnapat Thipyopas,et al. Aerodynamics of Southern Hawker Dragonfly: Aeshna cyanea , 2015 .
[56] Rubentheren Viyapuri,et al. Design and mechanical analysis of a 3D-printed biodegradable biomimetic micro air vehicle wing , 2016 .
[57] Martin Skote,et al. Gliding performance of 3-D corrugated dragonfly wing with spanwise variation , 2016 .
[58] Erfan Salami,et al. Effects of heat treatment on chitosan nanocomposite film reinforced with nanocrystalline cellulose and tannic acid. , 2016, Carbohydrate polymers.
[59] Yingying Zheng,et al. A time-resolved PIV study on the force dynamics of flexible tandem wings in hovering flight , 2016 .
[60] Isao Shimoyama,et al. The effect of the phase angle between the forewing and hindwing on the aerodynamic performance of a dragonfly-type ornithopter , 2016 .
[61] Yingying Zheng,et al. An experimental study on the forewing–hindwing interactions in hovering and forward flights , 2016 .
[62] Xiaojing Sun,et al. A review on studies of the aerodynamics of different types of maneuvers in dragonflies , 2017 .
[63] Erfan Salami,et al. A bibliometric review of progress in micro air vehicle research , 2017 .
[64] Takaji Inamuro,et al. Hovering and targeting flight simulations of a dragonfly-like flapping wing-body model by the immersed boundary-lattice Boltzmann method , 2017 .
[65] Mohd Rafie Johan,et al. An experimental study of elastic properties of dragonfly-like flapping wings for use in biomimetic micro air vehicles (BMAVs) , 2017 .
[66] Guoyi He,et al. A computational study of the aerodynamic performance of a dragonfly forewing in gliding flight , 2018 .
[67] Qiushi Li,et al. Experimental and Numerical Investigation on Dragonfly Wing and Body Motion during Voluntary Take-off , 2018, Scientific Reports.
[68] Peter A. K. Szabo,et al. At-scale lift experiments modeling dragonfly forewings , 2018, Bioinspiration & biomimetics.
[69] Hiromu Hashimoto,et al. Deformation behavior of dragonfly-inspired nodus structured wing in gliding flight through experimental visualization approach , 2018, Scientific Reports.
[70] Uttam K. Chakravarty,et al. Experimental analysis of aerodynamic performances of dragonfly wings , 2018 .
[71] Stuart J. Laurence,et al. Flapping tandem-wing aerodynamics: dragonflies in steady forward flight , 2018 .