Dragonfly Flight: I. Gliding Flight and Steady-State Aerodynamic Forces
Open Access
- 1 February 1997
- journal article
- Published by The Company of Biologists in Journal of Experimental Biology
- Vol. 200 (3) , 543-556
- https://doi.org/10.1242/jeb.200.3.543
Abstract
The free gliding flight of the dragonfly Sympetrum sanguineum was filmed in a large flight enclosure. Reconstruction of the glide paths showed the flights to involve accelerations. Where the acceleration could be considered constant, the lift and drag forces acting on the dragonfly were calculated. The maximum lift coefficient (CL) recorded from these glides was 0.93; however, this is not necessarily the maximum possible from the wings. Lift and drag forces were additionally measured from isolated wings and bodies of S. sanguineum and the damselfly Calopteryx splendens in a steady air flow at Reynolds numbers of 700–2400 for the wings and 2500–15 000 for the bodies. The maximum lift coefficients (CL,max) were 1.07 for S. sanguineum and 1.15 for C. splendens, which are greater than those recorded for all other insects except the locust. The drag coefficient at zero angle of attack ranged between 0.07 and 0.14, being little more than the Blassius value predicted for flat plates. Dragonfly wings thus show exceptional steady-state aerodynamic properties in comparison with the wings of other insects. A resolved-flow model was tested on the body drag data. The parasite drag is significantly affected by viscous forces normal to the longitudinal body axis. The linear dependence of drag on velocity must thus be included in models to predict the parasite drag on dragonflies at non-zero body angles.Keywords
This publication has 20 references indexed in Scilit:
- Unsteady Aerodynamic Performance of Model Wings at Low Reynolds NumbersJournal of Experimental Biology, 1993
- Flight of the honeybeeJournal of Comparative Physiology B, 1992
- The Aerodynamics of FlightPublished by Springer Nature ,1992
- Aerodynamics and the Origin of Insect FlightPublished by Elsevier ,1991
- Mechanics of Forward Flight in Bumblebees: II. QUASI-STEADY LIFT AND POWER REQUIREMENTSJournal of Experimental Biology, 1990
- The effect of size on the optimal shapes of gliding insects and seedsJournal of Zoology, 1989
- Flight Performance of a DragonflyJournal of Experimental Biology, 1988
- The aerodynamics of hovering insect flight. VI. Lift and power requirementsPhilosophical Transactions of the Royal Society of London. B, Biological Sciences, 1984
- The aerodynamics of hovering insect flight. IV. Aerodynamic mechanismsPhilosophical Transactions of the Royal Society of London. B, Biological Sciences, 1984
- Biology and physics of locust flight. III. The aerodynamics of locust flightPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1956