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
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