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Navigating to the Moon along low-energy transfers

机译:沿低能量传递导航到月球

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摘要

This paper presents a navigation strategy to fly to the Moon along a Weak Stability Boundary transfer trajectory. A particular strategy is devised to ensure capture into an uncontrolled relatively stable orbit at the Moon. Both uncertainty in the orbit determination process and in the control of the thrust vector are included in the navigation analysis. The orbit determination process is based on the definition of an optimal filtering technique that is able to meet accuracy requirements at an acceptable computational cost. Three sequential filtering techniques are analysed: an extended Kalman filter, an unscented Kalman filter and a Kalman filter based on high order expansions. The analysis shows that only the unscented Kalman filter meets the accuracy requirements at an acceptable computational cost. This paper demonstrates lunar weak capture for all trajectories within a capture corridor defined by all the trajectories in the neighbourhood of the nominal one, in state space. A minimum Δv strategy is presented to extend the lifetime of the spacecraft around the Moon. The orbit determination and navigation strategies are applied to the case of the European Student Moon Orbiter.
机译:本文提出了一种沿着弱稳定边界转移轨迹飞向月球的导航策略。设计了一种特殊的策略来确保捕获到月球不受控制的相对稳定的轨道中。导航分析中既包括轨道确定过程中的不确定性,也包括推力矢量的控制中的不确定性。轨道确定过程基于能够以可接受的计算成本满足精度要求的最佳滤波技术的定义。分析了三种顺序滤波技术:扩展卡尔曼滤波器,无味卡尔曼滤波器和基于高阶展开的卡尔曼滤波器。分析表明,只有无味的卡尔曼滤波器才能以可接受的计算成本满足精度要求。本文展示了在状态空间中,由名义轨道附近的所有轨迹所定义的捕获通道内,所有轨迹的月球弱捕获。提出了最小的Δv策略,以延长航天器在月球周围的寿命。轨道确定和导航策略适用于欧洲学生月球轨道器的情况。

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