Low-Energy Transfers to Lunar Distant Retrograde Orbits from Geostationary Transfer Orbits

Chao Peng, Yunong Shang, Shengmao He, Zhengfan Zhu, Changxuan Wen
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Abstract

This study focuses on the low-energy transfers to lunar distant retrograde orbits (DROs) from geostationary transfer orbits (GTOs) in the bicircular-restricted sun–Earth–moon four-body problem. The low-energy transfer is essential for low-cost small satellites reaching out to the Moon, and the departure from GTO allows more rideshare opportunities. We first created several large-scale databases of trajectory segments, such as GTO to apogee in the weak-stability area, apogee to perilune, and DRO to perilune. Then, millions of GTO–DRO transfer trajectories with double powered lunar flybys (PLFs) and weak stability boundary (WSB) ballistic transfer were constructed through trajectory patching. The key flight information, such as the [Formula: see text]–time-of-flight Pareto fronts, launch windows, and the flight mode via WSB ballistic transfer, is obtained from feasible solutions. Results show that low-energy GTO–DRO transfers can be achieved by exploiting PLFs and WSB ballistic arcs, which suggests potential applications in the cislunar space.
从地球静止转移轨道向月球遥远逆行轨道的低能量转移
本研究的重点是在双圆限制的日月四体问题中,从地球静止转移轨道(GTO)向月球遥远逆行轨道(DRO)的低能量转移。低能量转移对于低成本小型卫星飞向月球至关重要,而离开地球同步转移轨道则可以获得更多的搭乘机会。我们首先创建了几个大规模的轨迹段数据库,如在弱稳定区从GTO到远地点、从远地点到近地点以及从DRO到近地点。然后,通过轨迹修补,构建了数以百万计的 GTO-DRO 转移轨迹,其中包括双动力绕月飞行(PLF)和弱稳定边界(WSB)弹道转移。从可行解中获得了关键飞行信息,如[公式:见正文]飞行时间帕累托前沿、发射窗口和通过 WSB 弹道转移的飞行模式。结果表明,利用帕累托前沿和WSB弹道弧线可以实现低能量的GTO-DRO转移,这表明它在半月空间具有潜在的应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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