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Distributed coordinated finite-time attitude tracking control for multiple networked spacecraft systems with unknown deadzone

  • Chuanjiang Li
  • , Zhiyong She
  • , Dongyu Li*
  • , Yueyong Lv
  • *Corresponding author for this work
  • Harbin Institute of Technology
  • Toronto Metropolitan University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

In this paper, the distributed coordinated attitude tracking control problem for multiple networked spacecraft systems is considered. More specifically, in the case where there exists one single dynamic leader, we propose a distributed tracking control algorithm for multiple networked spacecraft systems such that the attitude of all the followers could track and follow the attitude of the leader in the presence of unknown system dynamics and external disturbances under a general directed graph that characterizes the interaction among the leader and the followers. In reality, we often need the attitude tracking to be achieved in finite time. To enhance the convergence speed of the distributed control system, we first combine the terminal sliding-mode with the distributed attitude tracking controller. Finite time convergence and stability of the closed-loop system can be guaranteed by Lyapunov theory, while the ultimate attitude tracking error and the gain of the terminal sliding-mode controller can significantly be reduced. Considering practical control systems, deadzone is one of the most common actuator nonlinearities we have to deal with. It is usually known as a static nonlinearity which is insensitive to small signals. We utilize a radial basis function neural network to compensate for the unknown deadzone effect due to their superior approximation capability while the tracking error for the deadzone effect is bounded and converging. Then, the unknown system dynamics and external disturbances of the spacecraft systems are estimated with another adaptive neural network law. The proposed control algorithm makes use of two neural networks to approximate unknown system dynamics, external disturbances, and deadzone functions, respectively. This method substantially reduces computing resources required. We present a sufficient condition on the directed graph such that all followers can achieve attitude and angular velocity consensus with a dynamic leader in finite time with unknown system dynamics, external disturbances, and deadzone. All the proposed algorithms are distributed and can be implemented by using only local measurements in the absence of communication. Finally, the proposed control scheme is applied to a group of spacecraft. Simulation results are provided to show the effectiveness of the proposed control algorithms.

Original languageEnglish
Title of host publication68th International Astronautical Congress, IAC 2017
Subtitle of host publicationUnlocking Imagination, Fostering Innovation and Strengthening Security
PublisherInternational Astronautical Federation, IAF
Pages7106-7111
Number of pages6
ISBN (Print)9781510855373
StatePublished - 2017
Externally publishedYes
Event68th International Astronautical Congress: Unlocking Imagination, Fostering Innovation and Strengthening Security, IAC 2017 - Adelaide, Australia
Duration: 25 Sep 201729 Sep 2017

Publication series

NameProceedings of the International Astronautical Congress, IAC
Volume11
ISSN (Print)0074-1795

Conference

Conference68th International Astronautical Congress: Unlocking Imagination, Fostering Innovation and Strengthening Security, IAC 2017
Country/TerritoryAustralia
CityAdelaide
Period25/09/1729/09/17

Keywords

  • Distributed attitude tracking
  • Finite-time control
  • Neural networks

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