On optimal three-impulse Earth–Moon transfers in a four-body model

Guido Grossi, Carmine Buonagura, Carmine Giordano, Francesco Topputo
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Abstract

Within the emerging age of lunar exploration, optimizing transfer trajectories is a fundamental measure toward achieving more economical and efficient lunar missions. This study addresses the possibility of reducing the fuel cost of two-impulse Earth–Moon transfers in a four-body model with the Earth, the Moon, and the Sun as primaries. Lawden’s primer vector theory is applied within this framework to derive a set of necessary conditions for a fuel-optimal trajectory. These conditions are used to identify which trajectories from an existing database could benefit from the insertion of an additional intermediate impulse. More than 10,000 three-impulse transfers are computed with a direct numerical optimization method. These solutions contribute to enriching the database of impulsive trajectories, useful to perform trade-off analyses. While the majority of trajectories exhibit only marginal improvements, a significant breakthrough emerges for transfers featuring an initial gravity assist at the Moon. Implementing a corrective maneuver after the lunar encounter yields substantial reductions in fuel costs.

Abstract Image

关于四体模型中的最佳三脉冲地月转移
在新兴的月球探测时代,优化转移轨道是实现更经济、更高效的月球任务的基本措施。本研究探讨了在以地球、月球和太阳为主的四体模型中降低双脉冲地月转移燃料成本的可能性。在这一框架内应用了劳登的引力矢量理论,以推导出一系列燃料最优轨迹的必要条件。这些条件被用来确定现有数据库中哪些轨道可以从插入额外的中间脉冲中获益。使用直接数值优化方法计算了 10,000 多次三脉冲转移。这些解决方案有助于丰富脉冲轨迹数据库,有助于进行权衡分析。虽然大多数轨迹只表现出微小的改进,但在以月球初始重力辅助为特征的转移方面出现了重大突破。在月球相遇后实施修正机动可大幅降低燃料成本。
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