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Lyapunov-Based Thrusters’ Selection for Spacecraft Control: Analysis and Experimentation

机译:基于李雅普诺夫的推进器选择用于航天器控制:分析和实验

摘要

This paper introduces a method for spacecraft rotation and translation control by on–off thrusters with guaranteed Lyapunov-stable tracking of linear dynamic models. In particular, the proposed control method switches on, at each time step, only those thrusters needed to maintain stability. Furthermore, the strategy allocates the configuration so that the minimum number of actuators is used. One of the benefits of the proposed method is that it substitutes both the thruster mapping and the pulse modulation algorithms typically used for real-time allocation of the firing thrusters and for determining the duration of the firing. The proposed approach reduces the computational burden of the onboard computer versus the use of classical thruster mapping algorithms, which typically involve iterative matrix operations. The paper presents analytical demonstrations, numerical simulations on a six-degree-offreedom spacecraft, and experimental tests on a hardware-in-the-loop three-degree-of-freedom spacecraft simulator floating over air pads on a flat floor. The method proves to be effective and easy to implement in real time.
机译:本文介绍了一种通过启闭推进器进行航天器旋转和平移控制的方法,该方法可保证线性动力学模型的Lyapunov稳定跟踪。特别地,所提出的控制方法在每个时间步仅接通那些需要保持稳定性的推进器。此外,该策略会分配配置,以便使用最少数量的执行器。所提出的方法的优点之一是它替代了通常用于点火推进器实时分配和确定点火持续时间的推进器映射和脉冲调制算法。与传统的推力器映射算法的使用相比,该方法减轻了船载计算机的计算负担,而经典的推力器映射算法通常涉及迭代矩阵运算。本文介绍了六自由度航天器的分析演示,数值模拟,以及在平坦地板上的气垫上漂浮的硬件在环三自由度航天器模拟器的实验测试。该方法被证明是有效的并且易于实时实施。

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