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Robust Nonlinear Adaptive Relative Pose Control for Cooperative Spacecraft During Rendezvous and Proximity Operations

机译:交会和近距作战中合作航天器的鲁棒非线性自适应相对姿态控制

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摘要

This brief addresses the relative pose control for cooperative spacecraft during rendezvous and proximity operations with parametric uncertainties based on the noncertainty equivalence approach. The relative position dynamics modeled in the target’s line-of-sight coordinate frame and attitude synchronized dynamics described by modified Rodrigues parameters are formulated as the typical Euler–Lagrange form to facilitate six-degrees-of-freedom relative pose control design. Due to the immersion and invariance adaptive control approach, unknown parametric uncertainties are compensated online and the transient performance of closed-loop states can be regulated by both controller and estimator parameters. Asymptotic convergence of the relative position and relative attitude is proved rigorously in the Lyapunov framework. Numerical simulation of the nonlinear adaptive control scheme for spacecraft line-of-sight rendezvous and proximity operations is also presented to highlight potential closed-loop performance improvements compared with the application of classical certainty equivalence-based adaptive controllers.
机译:本摘要介绍了基于不确定性等效方法的具有参数不确定性的会合和接近操作期间合作航天器的相对姿态控制。在目标视线坐标系中建模的相对位置动力学和由修改后的Rodrigues参数描述的姿态同步动力学被公式化为典型的Euler-Lagrange形式,以简化六自由度的相对姿态控制设计。由于采用了浸入式和不变性自适应控制方法,可以在线补偿未知的参数不确定性,并且可以通过控制器和估计器参数来调节闭环状态的瞬态性能。在Lyapunov框架中严格证明了相对位置和相对态度的渐近收敛性。还提出了用于航天器视线交会和接近操作的非线性自适应控制方案的数值模拟,以强调与基于经典确定性的自适应控制器相比,潜在的闭环性能改进。

著录项

  • 来源
    《IEEE Transactions on Control Systems Technology》 |2017年第5期|1840-1847|共8页
  • 作者

    Liang Sun; Wei Huo; Zongxia Jiao;

  • 作者单位

    Seventh Research Division, Science and Technology on Aircraft Control Laboratory, School of Automation Science and Electrical Engineering, Beihang University, Beijing, China;

    Seventh Research Division, Science and Technology on Aircraft Control Laboratory, School of Automation Science and Electrical Engineering, Beihang University, Beijing, China;

    Science and Technology on Aircraft Control Laboratory, School of Automation Science and Electrical Engineering, Beihang University, Beijing, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Space vehicles; Adaptive control; Orbits; Attitude control; Earth; Navigation;

    机译:航天器;自适应控制;轨道;姿态控制;地球;导航;

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