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Research Article | Open Access

Dynamics and FNTSM Control of Spacecraft with a Film Capture Pocket System

Zhuoran Huang1Chao Tang1Qiang Yu2Mohamed Shehata Saleh Khaliel3Cheng Wei1( )
School of Astronautics, Harbin Institute of Technology, Harbin, China
Beijing Institute of control engineering, China Academy of Space Technology, Beijing, China
Mechanical Engineering Department, Benha Faculty of Engineering, Benha University, Benha, Egypt
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Abstract

To solve the problem of space debris, a film capture pocket system is designed in this paper. The film capture pocket is more flexible and reliable, compared with the space rope net. The film capture pocket system contains many flexible structures that are prone to large deformation and vibration during movement. The deformation causes large disturbances to the service spacecraft. It is necessary to establish an accurate rigid-flexible coupling dynamic model for quantitative analysis of disturbances. First, a film dynamic model is developed using high-order absolute nodal coordinate formulation. Second, an attitude tracking control law is designed by using the fast nonsingular terminal sliding mode controller and fixed time dilation observer (FxESO). Finally, combining dynamics and control principles, a virtual prototype of spacecraft with film capture pocket system is established. The simulation results show that higher-order absolute nodal coordinate formulation elements have better convergence, compared to ABAQUS finite element analysis. Meanwhile, the dynamic model simulates the deformation and vibration states of large flexible structures, during the spacecraft maneuver. The FxESO can estimate and compensate the complex disturbance. The error under fast nonsingular terminal sliding mode + FxESO control law converge more rapidly than the nonsingular terminal sliding mode + expansion observer control law. The final spacecraft attitude tracking error is about 10−4, indicating the effectiveness of the controller.

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Space: Science & Technology
Article number: 0079

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Cite this article:
Huang Z, Tang C, Yu Q, et al. Dynamics and FNTSM Control of Spacecraft with a Film Capture Pocket System. Space: Science & Technology, 2023, 3: 0079. https://doi.org/10.34133/space.0079

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Received: 20 June 2023
Accepted: 05 September 2023
Published: 01 November 2023
© 2023 Zhuoran Huang et al. Exclusive licensee Beijing Institute of Technology Press. No claim to original U.S. Government Works.

Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0).