Fast spacecraft adaptive attitude tracking control through immersion and invariance design

Haowei Wen, Xiaokui Yue, Peng Li, Jianping Yuan

Research output: Contribution to journalArticlepeer-review

25 Scopus citations

Abstract

This paper presents a novel non-certainty-equivalence adaptive control method for the attitude tracking control problem of spacecraft with inertia uncertainties. The proposed immersion and invariance (I&I) based adaptation law provides a more direct and flexible approach to circumvent the limitations of the basic I&I method without employing any filter signal. By virtue of the adaptation high-gain equivalence property derived from the proposed adaptive method, the closed-loop adaptive system with a low adaptation gain could recover the high adaptation gain performance of the filter-based I&I method, and the resulting control torque demands during the initial transient has been significantly reduced. A special feature of this method is that the convergence of the parameter estimation error has been observably improved by utilizing an adaptation gain matrix instead of a single adaptation gain value. Numerical simulations are presented to highlight the various benefits of the proposed method compared with the certainty-equivalence-based control method and filter-based I&I control schemes.

Original languageEnglish
Pages (from-to)77-84
Number of pages8
JournalActa Astronautica
Volume139
DOIs
StatePublished - Oct 2017

Keywords

  • Adaptation gain matrix
  • Adaptive control
  • High-gain equivalence
  • Immersion and invariance
  • Non-certainty-equivalence

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