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NASA's Planned Return to the Moon: Global Access and Anytime Return Requirement Implications on the Lunar Orbit Insertion Burns

机译:美国宇航局计划的登月计划:全球访问和随时返回要求对月球轨道着火的影响

摘要

Lunar orbit insertion LOI is a critical maneuver for any mission going to the Moon. Optimizing the geometry of this maneuver is crucial to the success of the architecture designed to return humans to the Moon. LOI burns necessary to meet current NASA Exploration Constellation architecture requirements for the lunar sortie missions are driven mainly by the requirement for global access and "anytime" return from the lunar surface. This paper begins by describing the Earth-Moon geometry which creates the worst case (delta)V for both the LOI and the translunar injection (TLI) maneuvers over the full metonic cycle. The trajectory which optimizes the overall (delta)V performance of the mission is identified, trade studies results covering the entire lunar globe are mapped onto the contour plots, and the effects of loitering in low lunar orbit as a means of reducing the insertion (delta)V are described. Finally, the lighting conditions on the lunar surface are combined with the LOI and TLI analyses to identify geometries with ideal lighting conditions at sites of interest which minimize the mission (delta)V.
机译:月球插入LOI是执行任何登月任务的关键操作。优化这种动作的几何形状对于设计成功将人类送回月球的架构至关重要。满足当前NASA探索星座对月球出击任务所需的LOI烧伤主要是由对全球访问和从月球表面“随时”返回的要求驱动的。本文首先描述了地球月亮的几何形状,该几何形状在整个声子周期内对LOI和跨月注入(TLI)演算都产生了最坏的情况δV。确定优化任务的整体ΔV性能的轨迹,将覆盖整个月球的贸易研究结果映射到等高线图上,并在低月球轨道上游荡以减少插入量(δ V)。最后,将月球表面的照明条件与LOI和TLI分析结合起来,以在目标位置确定具有理想照明条件的几何形状,从而将任务差ΔV最小化。

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