DRO低能量转移问题的机理分析:一个能量视角

IF 2.7 1区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Ming Wang, Chen Zhang, Hao Zhang
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引用次数: 0

摘要

2:1共振远逆行轨道(DRO)以其长期稳定性和全球可达性而闻名,在当前的地月空间任务探索中具有战略意义。利用弱稳定边界(WSB)和月球重力辅助(LGA)综合分析了平面双圆受限四体问题(BCR4BP)中低能量转换为2:1 DRO的问题。转移过程可分为三个阶段:地月转移、日地弱稳定边界转移和DRO低能捕获。针对关键问题,本文研究了:(1)在何种LGA条件下航天器能够到达WSB区域的近似区域?(2)轨迹在到达WSB所在区域后,如何返回到2:1 DRO附近,从而可能促进低能量DRO插入?我们的研究包括全面分析航天器在整个传递过程中地月机械能和雅可比能的变化。该分析得出了潜在低能DRO插入所需的能量和几何条件,有效地过滤掉了许多不切实际的候选轨迹,提高了计算效率。本文将这种几何条件称为低能量转移网关(LETG)。利用LEGT作为拼接接口,通过微分修正,有效地获得了双脉冲DRO传递轨迹的大量可行解,其中一些解是以前未发现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanism analysis of the DRO low-energy transfer problem: An energy perspective

The 2:1 resonant distant retrograde orbit (DRO), known for its long-term stability and global accessibility, holds strategic significance in current Earth-Moon space mission explorations. This paper conducts a comprehensive analysis of the problem of low-energy transferring into 2:1 DRO using the weak stability boundary (WSB) and lunar gravity assist (LGA) in the planar bi-circular restricted four-body problem (BCR4BP). The transfer process is categorized into three phases: the Earth-Moon transfer, Sun-Earth weak stability boundary transfer, and DRO low-energy capture. Addressing key questions, our study investigates: (1) Under what LGA conditions can the spacecraft reach the approximate area where the WSB region is situated? (2) How do trajectories, upon reaching the region where the WSB is located, return to the vicinity of 2:1 DRO, potentially facilitating low-energy DRO insertion? Our study involved a comprehensive analysis of the spacecraft’s changes in Earth-Moon mechanical energy and Jacobi energy during the entire transfer process. This analysis yielded the energy and geometric conditions necessary for potential low-energy DRO insertion, effectively filtering out numerous impractical candidate trajectories and enhancing computational effciency. In this paper, the geometric condition is referred to as the low-energy transfer gateway (LETG). Using the LEGT as the stitching interface, a significant number of feasible solutions were obtained effectively for bi-impulse DRO transfer trajectories through differential correction, some of which were previously undiscovered.

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来源期刊
Astrodynamics
Astrodynamics Engineering-Aerospace Engineering
CiteScore
6.90
自引率
34.40%
发文量
32
期刊介绍: Astrodynamics is a peer-reviewed international journal that is co-published by Tsinghua University Press and Springer. The high-quality peer-reviewed articles of original research, comprehensive review, mission accomplishments, and technical comments in all fields of astrodynamics will be given priorities for publication. In addition, related research in astronomy and astrophysics that takes advantages of the analytical and computational methods of astrodynamics is also welcome. Astrodynamics would like to invite all of the astrodynamics specialists to submit their research articles to this new journal. Currently, the scope of the journal includes, but is not limited to:Fundamental orbital dynamicsSpacecraft trajectory optimization and space mission designOrbit determination and prediction, autonomous orbital navigationSpacecraft attitude determination, control, and dynamicsGuidance and control of spacecraft and space robotsSpacecraft constellation design and formation flyingModelling, analysis, and optimization of innovative space systemsNovel concepts for space engineering and interdisciplinary applicationsThe effort of the Editorial Board will be ensuring the journal to publish novel researches that advance the field, and will provide authors with a productive, fair, and timely review experience. It is our sincere hope that all researchers in the field of astrodynamics will eagerly access this journal, Astrodynamics, as either authors or readers, making it an illustrious journal that will shape our future space explorations and discoveries.
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