Flight stabilization control of a hovering model insect
Open Access
- 1 August 2007
- journal article
- Published by The Company of Biologists in Journal of Experimental Biology
- Vol. 210 (15) , 2714-2722
- https://doi.org/10.1242/jeb.004507
Abstract
SUMMARY The longitudinal stabilization control of a hovering model insect was studied using the method of computational fluid dynamics to compute the stability and control derivatives, and the techniques of eigenvalue and eigenvector analysis and modal decomposition, for solving the equations of motion (morphological and certain kinematical data of hoverflies were used for the model insect). The model insect has the same three natural modes of motion as those reported recently for a hovering bumblebee: one unstable oscillatory mode, one stable fast subsidence mode and one stable slow subsidence mode. Controllability analysis shows that although unstable, the flight is controllable. For stable hovering, the unstable oscillatory mode needs to be stabilized and the slow subsidence mode needs stability augmentation. The former can be accomplished by feeding back pitch attitude, pitch rate and horizontal velocity to produce \batchmode \documentclass[fleqn,10pt,legalpaper]{article} \usepackage{amssymb} \usepackage{amsfonts} \usepackage{amsmath} \pagestyle{empty} \begin{document} \({\delta}{\bar{{\phi}}}\) \end{document} orδα 2; the latter by feeding back vertical velocity to produce δΦ or δα1 (δΦ, \batchmode \documentclass[fleqn,10pt,legalpaper]{article} \usepackage{amssymb} \usepackage{amsfonts} \usepackage{amsmath} \pagestyle{empty} \begin{document} \({\delta}{\bar{{\phi}}}\) \end{document}, δα1and δα2 denote control inputs: δΦ and \batchmode \documentclass[fleqn,10pt,legalpaper]{article} \usepackage{amssymb} \usepackage{amsfonts} \usepackage{amsmath} \pagestyle{empty} \begin{document} \({\delta}{\bar{{\phi}}}\) \end{document} represent changes in stroke amplitude and mean stroke angle, respectively; δα1represents an equal change whilst δα2 a differential change in the geometrical angles of attack of the downstroke and upstroke).
Keywords
This publication has 15 references indexed in Scilit:
- Dynamic flight stability of a hovering bumblebeeJournal of Experimental Biology, 2005
- A comparison of visual and haltere-mediated equilibrium reflexes in the fruit flyDrosophila melanogasterJournal of Experimental Biology, 2003
- The Biomechanics of Insect FlightPublished by Walter de Gruyter GmbH ,2000
- Haltere–mediated equilibrium reflexes of the fruit fly, Drosophila melanogasterPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1999
- Control of Spacecraft and AircraftPublished by Walter de Gruyter GmbH ,1994
- The halteres of the blowfly CalliphoraJournal of Comparative Physiology A, 1993
- Principles of visual motion detectionTrends in Neurosciences, 1989
- The aerodynamics of hovering insect flight. II. Morphological parametersPhilosophical 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
- The three-dimensional optomotor torque system ofDrosophila melanogasterJournal of Comparative Physiology A, 1982