• DocumentCode
    3071329
  • Title

    Satellite attitude control using only magnetorquers

  • Author

    Wang, Ping ; Shtessel, Yuri B. ; Wang, Yong-qian

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Alabama Univ., Huntsville, AL, USA
  • fYear
    1998
  • fDate
    8-10 Mar 1998
  • Firstpage
    500
  • Lastpage
    504
  • Abstract
    Since magnetic control systems are relatively reliable, lightweight, and energy efficient, magnetic torque was found to be attractive for small, inexpensive satellites. Magnetorquers are often used with a gravity gradient boom to control a spacecraft´s attitude. However, attempts at using only magnetorquers in all three axes have been unsuccessful, because control torque can only be generated perpendicular to the geomagnetic field vector. This study presents a method to control small satellites only using magnetorquers. If the spacecraft is isoinertial, employing Krstic´s backstepping concept (1991), dynamics equation is divided into two parts in geomagnetic frame: the outer loop and the inner loop. The outer loop controller is regarded as a regulation system which is controlled by the virtual control input. The outer loop is a nonlinear and periodical system, and its stability is supported by La Salle´s and Floquet´s theorems. The inner loop controller is designed for a tracking system and produces the signal to track the virtual control. Considering disturbance torque, a sliding mode controller is designed in the inner loop. Simulation results show that three axis control can be achieved with magnetorquers as the sole actuators. The control system has a good performance not only in detumbling phase but also in attitude acquisition phase
  • Keywords
    artificial satellites; attitude control; electric actuators; magnetic devices; nonlinear control systems; periodic control; stability; torque control; variable structure systems; Floquet theorem; La Salle theorem; attitude acquisition phase; backstepping; detumbling phase; disturbance torque; dynamics equation; geomagnetic frame; inner loop controller; isoinertial spacecraft; magnetorquers; nonlinear periodical system; outer loop controller; satellite attitude control; sliding mode controller; stability; three axis control; Attitude control; Control systems; Energy efficiency; Geomagnetism; Lighting control; Satellites; Sliding mode control; Space vehicles; Torque control; Tracking loops;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    System Theory, 1998. Proceedings of the Thirtieth Southeastern Symposium on
  • Conference_Location
    Morgantown, WV
  • ISSN
    0094-2898
  • Print_ISBN
    0-7803-4547-9
  • Type

    conf

  • DOI
    10.1109/SSST.1998.660124
  • Filename
    660124