DocumentCode
3573327
Title
Satellite attitude control—A direct parametric approach
Author
Guang-Ren Duan
Author_Institution
Center for Control Theor. & Guidance Technol., Harbin Inst. of Technol., Harbin, China
fYear
2014
Firstpage
3989
Lastpage
3996
Abstract
In this paper, the dynamical model in a matrix second-order nonlinear form with respect to the three Euler angles is firstly established for the attitude system of a satellite, which is complete in the sense that no approximation is taken. Then, with the help of a recently proposed general parametric design approach for general fully-actuated second-order nonlinear systems, a direct parametric approach for satellite attitude control via proportional plus derivative feedback is proposed, which gives a complete parametrization of the pair of feedback gains, and allows usage of the established complete nonlinear model in matrix second-order format. The approach possesses two important features. Firstly, with the proposed controller parametrization, the satellite attitude system, though highly nonlinear, can be turned into a constant linear system with desire eigenstructure. Secondly, in such a design there are still degrees of freedom which may be further utilized to improve the system performance. An example is considered to demonstrate the use of the proposed approach.
Keywords
artificial satellites; attitude control; eigenstructure assignment; feedback; nonlinear control systems; proportional control; constant linear system; direct parametric approach; dynamical model; eigenstructure; feedback gains; general fully-actuated second-order nonlinear systems; general parametric design approach; matrix second-order format; matrix second-order nonlinear form; nonlinear model; proportional plus derivative feedback; satellite attitude control; satellite attitude system; three Euler angles; Attitude control; Closed loop systems; Equations; Mathematical model; Nonlinear systems; Satellites; Vectors; Attitude control; Direct parametric approach; Fully-actuated second-order systems; Nonlinear systems; Satellites;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Control and Automation (WCICA), 2014 11th World Congress on
Type
conf
DOI
10.1109/WCICA.2014.7053383
Filename
7053383
Link To Document