DocumentCode :
59077
Title :
Robust Magnetic Attitude Control of Satellites
Author :
Zanchettin, Andrea Maria ; Calloni, A. ; Lovera, Marco
Author_Institution :
Dipt. di Elettron., Inf. e Bioingegneria, Politec. di Milano, Milan, Italy
Volume :
18
Issue :
4
fYear :
2013
fDate :
Aug. 2013
Firstpage :
1259
Lastpage :
1268
Abstract :
Magnetic torquers are frequently adopted as primary actuators for the attitude control of small satellites in low Earth orbit. Such actuators generate a magnetic dipole which, in turn, leads to control torques thanks to the interaction with the magnetic field of the Earth. The design of attitude control laws based on magnetic torquers is a challenging problem as the torques generated by the coils are instantaneously constrained to lie in the plane orthogonal to the local direction of the geomagnetic field vector, which varies according to the current orbital position of the spacecraft. This implies that the attitude regulation problem is formulated over a time-varying model. In this paper, the design of control laws for magnetically actuated spacecraft is considered and an approach guaranteeing robustness to parametric uncertainty and optimal performance in terms of disturbance attenuation is presented. The proposed method is based on linear time-periodic models and H control theory. The results obtained by applying the proposed approach in a simulation study are also presented and discussed.
Keywords :
H control; actuators; artificial satellites; attitude control; control system synthesis; linear systems; magnetic fields; periodic control; robust control; time-varying systems; torque control; H control theory; control laws design; geomagnetic field vector; linear time-periodic models; local direction; low Earth orbit; magnetic dipole; magnetic field; magnetic torquers; magnetically actuated spacecraft; optimal performance; orbital position; parametric uncertainty; primary actuators; robust magnetic attitude control; small satellites; time-varying model; torque control; Aerospace control; attitude control; control design; linear feedback control systems; low Earth orbit satellites; robust control; robust stability;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2013.2259843
Filename :
6515625
Link To Document :
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