• DocumentCode
    2564581
  • Title

    Robust damage-mitigating control of aircraft for high performance and structural durability

  • Author

    Caplin, Jeffrey ; Ray, Asok ; Joshi, Suresh M.

  • Author_Institution
    Dept. of Mech. Eng., Pennsylvania State Univ., University Park, PA, USA
  • Volume
    5
  • fYear
    2000
  • fDate
    2000
  • Firstpage
    3048
  • Abstract
    This paper presents the concept and a design methodology for robust damage-mitigating control (DMC) of aircraft. The goal of DMC is to simultaneously achieve high performance and structural durability. The controller design procedure involves consideration of damage at critical points of the structure, as well as the performance requirements of the aircraft. An aeroelastic model of the wings has been formulated and is incorporated into a nonlinear rigid-body model of aircraft flight-dynamics. Robust damage-mitigating controllers are then designed using the H-based structured singular value (μ) synthesis method based on a linearized model of the aircraft. In addition to penalizing the error between the ideal performance and the actual performance of the aircraft, frequency-dependent weights are placed on the strain amplitude at the root of each wing. Using each controller in turn, the control system is put through an identical sequence of maneuvers, and the resulting (varying amplitude cyclic) stress profiles are analyzed using a fatigue crack growth model that incorporates the effects of stress overload. Comparisons are made to determine the impact of different weights on the resulting fatigue crack damage in the wings. The results of simulation experiments show significant savings in fatigue life of the wings while retaining the dynamic performance of the aircraft
  • Keywords
    H control; aircraft control; control system synthesis; linearisation techniques; nonlinear control systems; robust control; singular value decomposition; μ synthesis; H-based structured singular value synthesis; aeroelastic model; aircraft control; aircraft flight-dynamics; controller design; fatigue crack growth model; frequency-dependent weights; nonlinear rigid-body model; robust damage-mitigating control; strain amplitude; stress overload; structural durability; varying amplitude cyclic stress profiles; Aerodynamics; Aerospace control; Aircraft; Capacitive sensors; Control system synthesis; Design methodology; Fatigue; Frequency; Robust control; Stress control;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    American Control Conference, 2000. Proceedings of the 2000
  • Conference_Location
    Chicago, IL
  • ISSN
    0743-1619
  • Print_ISBN
    0-7803-5519-9
  • Type

    conf

  • DOI
    10.1109/ACC.2000.879125
  • Filename
    879125