Low-energy Earth–Moon transfers via Theory of Functional Connections and homotopy

C. T. Campana, G. Merisio, F. Topputo
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Abstract

Numerous missions leverage the weak stability boundary in the Earth–Moon–Sun system to achieve a safe and cost-effective access to the lunar environment. These transfers are envisaged to play a significant role in upcoming missions. This paper proposes a novel method to design low-energy transfers by combining the recent Theory of Functional Connections with a homotopic continuation approach. Planar patched transfer legs within the Earth–Moon and Sun–Earth systems are continued into higher-fidelity models. Eventually, the full Earth–Moon transfer is adjusted to conform to the dynamics of the planar Earth–Moon Sun-perturbed, bi-circular restricted four-body problem. The novelty lies in the avoidance of any propagation during the continuation process and final convergence. This formulation is beneficial when an extensive grid search is performed, automatically generating over 2000 low-energy transfers. Subsequently, these are optimized through a standard direct transcription and multiple shooting algorithm. This work illustrates that two-impulse low-energy transfers modeled in chaotic dynamic environments can be effectively formulated in Theory of Functional Connections, hence simplifying their overall design process. Moreover, its synergy with a homotopic continuation approach is demonstrated.

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通过功能连接和同调理论实现低能地月转移
许多飞行任务都利用了地球-月球-太阳系统的弱稳定边界,以实现安全和具有成本效益的进入月球环境。预计这些转移将在未来的任务中发挥重要作用。本文结合最新的功能连接理论和同位延续方法,提出了一种设计低能转移的新方法。地月系和日地系中的平面补间转移脚被延续到更高保真模型中。最终,完整的地月转移被调整为符合平面地月太阳扰动、双循环受限四体问题的动力学。其新颖之处在于避免了延续过程和最终收敛过程中的任何传播。在进行广泛的网格搜索时,自动生成 2000 多个低能量转移,这种表述方式非常有用。随后,通过标准的直接转录和多重射击算法对这些进行优化。这项工作说明,在混沌动态环境中建模的双脉冲低能耗转移可以有效地用功能连接理论进行表述,从而简化其整体设计过程。此外,还展示了它与同位延续方法的协同作用。
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