ATTITUDE CONTROL AND STABILIZATION OF SATELLITES USING REACTION WHEELS
DOI:
https://doi.org/10.62985/j.huit_ojs.vol26.no2E.393Từ khóa:
Satellite, attitude control, stabilization, reaction wheel, MATLAB/Simulink, Monte Carlo simulationTóm tắt
This paper presents a study on the dynamic modeling of a satellite–reaction wheel system in MATLAB/Simulink, the design and optimization of the controller using Simulink Design Optimization, and the assessment of system accuracy and stability under random disturbance torques via Monte Carlo simulations. The results provide a basis for further research on satellite attitude control and stabilization systems.
Tài liệu tham khảo
[1] N. T. Phuong Ha and H. Thai Hoang, Automatic Control Theory. Ho Chi Minh City: National University Publishing House, 2018, (in Vietnamese).
[2] A. A. Lebedev and L. S. Chernobrovkin, Dynamics of Unmanned Aerial Vehicles. Moscow, USSR: Oborongiz Publishing House, 1962, (in Russian).
[3] V. T. Bobronikov, System Analysis in Engineering Research. Moscow, Russia: Moscow Aviation Institute (MAI) Press, 2018, (in Russian).
[4] MathWorks, MATLAB and Simulink, Version R2023a. Natick, MA, USA: The MathWorks, Inc., 2023.
[5] J. R. Wertz, Spacecraft Attitude Determination and Control. Dordrecht, The Netherlands: Springer, 2012.
[6] M. J. Sidi, Spacecraft Dynamics and Control: A Practical Engineering Approach. Cambridge, U.K.: Cambridge University Press, 1997.
[7] H. Schaub and J. L. Junkins, Analytical Mechanics of Space Systems, 4th ed. Reston, VA, USA: American Institute of Aeronautics and Astronautics (AIAA), 2018, doi: https://doi.org/10.2514/4.105210
[8] B. Wie, Space Vehicle Dynamics and Control, 2nd ed. Reston, VA, USA: American Institute of Aeronautics and Astronautics (AIAA), 2008.
[9] K. Ogata, Modern Control Engineering, 5th ed. Upper Saddle River, NJ, USA: Prentice Hall, 2010.
[10] R. C. Dorf and R. H. Bishop, Modern Control Systems, 13th ed. Harlow, U.K.: Pearson, 2017.


