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首页> 外文期刊>Acta astronautica >Closed-loop powered-coast-powered predictive guidance for spacecraft rendezvous with non-singular terminal sliding mode steering
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Closed-loop powered-coast-powered predictive guidance for spacecraft rendezvous with non-singular terminal sliding mode steering

机译:用于非单数终端滑动模式转向的航天器Rendezvous闭环供电的预测指导

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摘要

The present study aims to present a guidance algorithm based on the relative motion prediction for orbital rendezvous, in which a coast phase is allowed between two powered phases. In both powered phases, the solution of the Hill-Clohessy-Wiltshire equations is used to find the required state variables at each time instant. To track the required trajectory and compensate for any orbital perturbations and uncertainties, a non-singular terminal sliding mode method is utilized as the steering law. Then, the finite time convergence of the state variables is mathematically proved. In addition, the starting time of the second powered phase is adapted to perturbations and uncertainties by another closed-loop algorithm during the coast phase. The prediction of the relative state variables along with the inclusion of a coast phase decreases the fuel consumption, while the last powered phase is responsible for the exactness of the terminal rendezvous. Numerical simulations indicate that the proposed guidance and steering laws result in reduced fuel consumption, exactness of the final conditions, and robustness in the presence of disturbances and model uncertainties.
机译:本研究旨在介绍基于轨道结合的相对运动预测的引导算法,其中在两个动力阶段之间允许海岸阶段。在两个动力阶段中,山丘 - Clohessy-Wiltshire方程的解决方案用于在每次瞬间找到所需的状态变量。为了跟踪所需的轨迹并补偿任何轨道扰动和不确定性,非单数终端滑动模式方法用作转向法。然后,在数学证明状态变量的有限时间汇聚。另外,第二个电相的起始时间适于在海岸阶段的另一闭环算法扰动和不确定性。对相对状态变量的预测随着包含海岸相的预测降低了燃料消耗,而最后的电力相位负责终端的准确性。数值模拟表明,拟议的指导和转向法则导致燃料消耗,最终条件的精确性以及在存在干扰和模型不确定性方面的鲁棒性。

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