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Energy-based Output Feedback Tension Control for Space Tether Deployment under Physical Constraint

机译:物理约束下基于能量的输出反馈张紧控制

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This paper focuses on the tethered satellite deployment control issue via tether tension control in a propellant-free manner. The tether deployment is a typical underactuated control problem when only the tension control was employed by actively accommodate tether length by mechanical device. Firstly, unlike most existing control methods, the energy-based view of feedback approaches are proposed in an analytical form with tension constraint. To regulate the dynamic behavior of tether deployment, an artificial potential energy function is introduced and combined with the system's Hamiltonian to construct the Lyapunov function. The asymptotic stability is shown by invoking the Lyapunov technique and LaSalle's invariance principle. Secondly, the proposed control approach is extended into an output feedback form without velocity measurement. Because the relative position can be easily measured rather than velocity from the practical perspective. In the controller, the term of tether length velocity is replaced by an approximate differentiation. Finally, numerical simulations are carried on to verify the effectiveness of the proposed control approaches. Performance of these proposed control approaches is investigated according to their dependency on control gains.
机译:本文主要关注通过无推进剂的系绳张力控制进行的系留卫星部署控制问题。当仅通过机械装置主动适应系绳长度而仅采用张力控制时,系绳展开是典型的欠驱动控制问题。首先,与大多数现有控制方法不同,以具有张力约束的分析形式提出了基于能量的反馈方法的观点。为了调节系绳部署的动态行为,引入了人工势能函数,并将其与系统的哈密顿量相结合以构造Lyapunov函数。通过调用Lyapunov技术和LaSalle不变性原理可以显示渐近稳定性。其次,将所提出的控制方法扩展为无需速度测量的输出反馈形式。因为从实际的角度来看,相对位置很容易测量,而不是速度。在控制器中,系绳长度速度的术语由近似微分代替。最后,进行了数值模拟,以验证所提出的控制方法的有效性。根据对控制增益的依赖性研究了这些建议控制方法的性能。

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