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Fault tolerant control with H performance for attitude tracking of flexible spacecraft

Fault tolerant control with H performance for attitude tracking of flexible spacecraft

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A fault-tolerant control scheme with thruster redundancy is developed and applied to perform attitude tracking manoeuvres for an orbiting flexible spacecraft. Based on the assumption of bounded elastic vibrations, an adaptive sliding mode controller is proposed to guarantee that all the signals of the resulting closed-loop attitude system are uniformly ultimately bounded in the presence of an unknown inertia matrix, bounded disturbances and unknown faults. An H performance index is introduced to describe the disturbance attenuation performance of the closed-loop system. This approach is then extended to the problem of elastic vibration without knowledge of the bounds a priori. The presented approach addresses thruster saturation limits and the desired thruster force is guaranteed to stay within the limit of each thruster. Extensive simulation studies have been conducted to demonstrate the closed-loop performance benefits compared to conventional control schemes.

References

    1. 1)
    2. 2)
      • H.M. Chen , Z.Y. Chen , J.P. Su . Design of a sliding mode controller for a water tank liquid level control system. Int. J. Innov. Comput. Inf. Control , 12 , 3149 - 3160
    3. 3)
    4. 4)
      • C.W. Li , S.C. Tong , Y.T. Wang . Fuzzy adaptive fault tolerant sliding mode control for SISO nonlinear systems. Int. J. Innov. Comput. Inf. Control , 12 , 3375 - 3384
    5. 5)
    6. 6)
      • Z. Mao , B. Jiang . Fault identification and fault tolerant control for a class of networked control systems. Int. J. Innov. Comput. Inf. Control , 5 , 1121 - 1130
    7. 7)
    8. 8)
    9. 9)
    10. 10)
      • A. van der Schaft . (2000) gain and passivity techniques in nonlinear control.
    11. 11)
      • K.K. Kumar , S. Rickard , S. Bartholomew . Adaptive neuro-control for spacecraft attitude control. Neuro Comput. , 2 , 131 - 148
    12. 12)
      • Boskovic, J.D., Li, S.M., Mehra, R.K.: `Intelligent control of spacecraft in the presence of actuator failures', Proc. 38th IEEE Conf. on Decision and Control, 1999, Phoenix, AZ, USA, p. 4472–4477.
    13. 13)
    14. 14)
    15. 15)
      • M. Sidi . (1997) Spacecraft dynamics and control.
    16. 16)
    17. 17)
    18. 18)
    19. 19)
    20. 20)
    21. 21)
    22. 22)
    23. 23)
    24. 24)
    25. 25)
    26. 26)
      • Wu, Q., Saif, M.: `Robust fault diagnosis for a satellite large angle attitude system using an iterative neuron PID observer', Proc. American Control Conf., June 2006, Minneapolis, USA, p. 5710–5715.
    27. 27)
    28. 28)
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