• DocumentCode
    1153786
  • Title

    Flight Dynamics and Control of Evasive Maneuvers: The Fruit Fly's Takeoff

  • Author

    Zabala, Francisco A. ; Card, Gwyneth M. ; Fontaine, Ebraheem I. ; Dickinson, Michael H. ; Murray, Richard M.

  • Author_Institution
    Div. of Eng. & Appl. Sci., California Inst. of Technol., Pasadena, CA, USA
  • Volume
    56
  • Issue
    9
  • fYear
    2009
  • Firstpage
    2295
  • Lastpage
    2298
  • Abstract
    We have approached the problem of reverse-engineering the flight control mechanism of the fruit fly by studying the dynamics of the responses to a visual stimulus during takeoff. Building upon a prior framework [G. Card and M. Dickinson, J. Exp. Biol., vol. 211, pp. 341-353, 2008], we seek to understand the strategies employed by the animal to stabilize attitude and orientation during these evasive, highly dynamical maneuvers. As a first step, we consider the dynamics from a gray-box perspective: examining lumped forces produced by the insect\´s legs and wings. The reconstruction of the flight initiation dynamics, based on the unconstrained motion formulation for a rigid body, allows us to assess the fly\´s responses to a variety of initial conditions induced by its jump. Such assessment permits refinement by using a visual tracking algorithm to extract the kinematic envelope of the wings [E. I. Fontaine, F. Zabala, M. Dickinson, and J. Burdick, "Wing and body motion during flight initiation in Drosophila revealed by automated visual tracking," submitted for publication] in order to estimate lift and drag forces [F. Zabala, M. Dickinson, and R. Murray, "Control and stability of insect flight during highly dynamical maneuvers," submitted for publication], and recording actual leg-joint kinematics and using them to estimate jump forces [F. Zabala, "A bio-inspired model for directionality control of flight initiation," to be published.]. In this paper, we present the details of our approach in a comprehensive manner, including the salient results.
  • Keywords
    aerodynamics; aerospace control; biomechanics; bone; kinematics; reverse engineering; tracking; bioinspired model; body motion; directionality control; flight control mechanism; flight dynamics; flight initiation dynamics; fruit fly; gray-box perspective; highly dynamical maneuvers; insect legs; insect wings; jump forces; kinematic envelope; leg-joint kinematics; lumped forces; reverse-engineering; rigid body; takeoff; unconstrained motion formulation; visual stimulus; visual tracking algorithm; wing motion; Aerospace control; Animals; Automatic control; Force control; Insects; Kinematics; Leg; Motion estimation; Stability; Tracking; Insect flight; stability control; takeoff dynamics; Algorithms; Animals; Biomechanics; Drosophila melanogaster; Escape Reaction; Flight, Animal; Image Processing, Computer-Assisted; Video Recording;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2009.2027606
  • Filename
    5175504