AbstractThis study examines a low-complexity control method that satisfies mechanical constraints by using control moment gyros for an agile maneuver. The method is designed based on the fact that a simple rotation around an Euler's principal axis corresponds to a well-approximated solution of a time-optimal rest-to-rest maneuver. With respect to an agile large-angle maneuver using CMGs, it is suggested that there exists a coasting period in which all gimbal angles are constant, and a constant body angular velocity is almost along the Euler's principal axis. The gimbals are driven such that the coasting period is generated in the proposed method. This allows the problem to be converted into obtaining only a coasting time and gimbal angles such that their combination maximizes body angular velocity along the rotational axis of the maneuver. The effectiveness of the proposed method is demonstrated by using numerical simulations. The results indicate that the proposed method shortens the settling time by 20–70% when compared to that of a traditional feedback method. Additionally, a comparison with an existing path planning method shows that the proposed method achieves a low computational complexity (that is approximately 150 times faster) and a certain level of shortness in the settling time.

    HighlightsA low-complexity control using control moment gyros is proposed for agile maneuvers.The method can satisfy mechanical constraints of control moment gyros.The method uses principal characteristics of large-angle agile maneuvers.The method can shorten the settling time by 20–70% compared with feedback control.The method can be carried out about 150 times faster than quasi-time optimal control.


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    Titel :

    A low-complexity attitude control method for large-angle agile maneuvers of a spacecraft with control moment gyros


    Beteiligte:

    Erschienen in:

    Acta Astronautica ; 139 ; 486-493


    Erscheinungsdatum :

    2017-07-27


    Format / Umfang :

    8 pages




    Medientyp :

    Aufsatz (Zeitschrift)


    Format :

    Elektronische Ressource


    Sprache :

    Englisch