TY - JOUR
T1 - Orbit-attitude-vibration Coupled Dynamics Modeling and Analysis of the Deorbit Sail System
AU - Wang, Zhan
AU - Yang, Keying
AU - Zhang, Jingrui
AU - Zhang, Zelin
AU - Su, Haodong
N1 - Publisher Copyright:
© Published under licence by IOP Publishing Ltd.
PY - 2025/10/1
Y1 - 2025/10/1
N2 - The deorbit sail, as a cost-effective active deorbit device for spacecraft, can alleviate the space debris problems. However, with the development of large-scale constellation and the increasing size of spacecraft, higher requirements are placed on deorbit efficiency and capacity, for which the development of membrane sail systems with larger size and better configuration is required. The increased size amplifies the flexible properties of the deorbit sail and the attitude effect on the windward area, creating coupling effects with the orbital deceleration process. To investigate the complex dynamics of deorbit sail systems, this paper firstly establishes an orbit-attitude-vibration coupled dynamics model of the deorbit sail system using the hybrid coordinate method and the Kane equation. Then, the dual quaternion method is employed to unify orbital and attitude parameters, making the equations more concise and utilizing numerical simulation. The model above can describe the deorbit process of deorbit sail systems of arbitrary scale, configuration and mounting position, and the equations are concise and of low dimensions. Further, the model is simulated, and the results show that (1) The flexible deformation affects both orbit and attitude motion, with amplified effects under external disturbances; (2)The attitude-orbit coupling reduces effective windward area and prolongs deorbit time. The research provides a theoretical basis for the subsequent attitude and structural vibration stabilization control of the deorbit sail system and the deorbit efficiency prediction.
AB - The deorbit sail, as a cost-effective active deorbit device for spacecraft, can alleviate the space debris problems. However, with the development of large-scale constellation and the increasing size of spacecraft, higher requirements are placed on deorbit efficiency and capacity, for which the development of membrane sail systems with larger size and better configuration is required. The increased size amplifies the flexible properties of the deorbit sail and the attitude effect on the windward area, creating coupling effects with the orbital deceleration process. To investigate the complex dynamics of deorbit sail systems, this paper firstly establishes an orbit-attitude-vibration coupled dynamics model of the deorbit sail system using the hybrid coordinate method and the Kane equation. Then, the dual quaternion method is employed to unify orbital and attitude parameters, making the equations more concise and utilizing numerical simulation. The model above can describe the deorbit process of deorbit sail systems of arbitrary scale, configuration and mounting position, and the equations are concise and of low dimensions. Further, the model is simulated, and the results show that (1) The flexible deformation affects both orbit and attitude motion, with amplified effects under external disturbances; (2)The attitude-orbit coupling reduces effective windward area and prolongs deorbit time. The research provides a theoretical basis for the subsequent attitude and structural vibration stabilization control of the deorbit sail system and the deorbit efficiency prediction.
UR - https://www.scopus.com/pages/publications/105023373245
U2 - 10.1088/1742-6596/3109/1/012091
DO - 10.1088/1742-6596/3109/1/012091
M3 - Conference article
AN - SCOPUS:105023373245
SN - 1742-6588
VL - 3109
JO - Journal of Physics: Conference Series
JF - Journal of Physics: Conference Series
IS - 1
M1 - 012091
T2 - 2nd International Conference on Space Science and Technology, ICSST 2025
Y2 - 22 May 2025 through 24 May 2025
ER -