多体系统中航天器轨迹设计的运动基元方法。

IF 1.2 4区 工程技术 Q3 ENGINEERING, AEROSPACE
Journal of the Astronautical Sciences Pub Date : 2023-01-01 Epub Date: 2023-09-11 DOI:10.1007/s40295-023-00395-7
Thomas R Smith, Natasha Bosanac
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引用次数: 0

摘要

预计在整个太阳系的半月空间和其他多体引力环境中运行的航天器的数量和种类将越来越多,因此有必要继续开发快速轨迹设计和设计空间探索战略。在机器人领域,类似的需求已经通过运动基元得到了解决,运动基元捕捉了运动的基本构件,并用于快速构建复杂的路径。受这一概念的启发,本文利用运动基元构建了一个框架,用于在多体引力系统中快速、明智地设计航天器轨迹。首先,通过聚类生成基本解(如选定的周期轨道及其稳定和不稳定流形)的运动基元,形成相空间段的离散摘要。然后构建并搜索运动基元图,生成基元序列,形成不同几何形状转移的候选初始猜测。利用多目标约束优化和拼位,从每个初始猜测计算连续的转移。在地月环形受限三体问题中,通过脉冲机动构建了一系列不同几何形状的天平点轨道之间的转移,证明了这种方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Motion Primitive Approach to Spacecraft Trajectory Design in a Multi-body System.

Motion Primitive Approach to Spacecraft Trajectory Design in a Multi-body System.

Motion Primitive Approach to Spacecraft Trajectory Design in a Multi-body System.

Motion Primitive Approach to Spacecraft Trajectory Design in a Multi-body System.

The increasing number and variety of spacecraft that are expected to operate within cislunar space and other multi-body gravitational environments throughout the solar system necessitates the continued development of strategies for rapid trajectory design and design space exploration. In the field of robotics, similar needs have been addressed using motion primitives that capture the fundamental building blocks of motion and are used to rapidly construct complex paths. Inspired by this concept, this paper leverages motion primitives to construct a framework for rapid and informed spacecraft trajectory design in a multi-body gravitational system. First, motion primitives of fundamental solutions, e.g., selected periodic orbits and their stable and unstable manifolds, are generated via clustering to form a discrete summary of segments of the phase space. Graphs of motion primitives are then constructed and searched to produce primitive sequences that form candidate initial guesses for transfers of distinct geometries. Continuous transfers are computed from each initial guess using multi-objective constrained optimization and collocation. This approach is demonstrated by constructing an array of geometrically distinct transfers between libration point orbits in the Earth-Moon circular restricted three-body problem with impulsive maneuvers.

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来源期刊
Journal of the Astronautical Sciences
Journal of the Astronautical Sciences 工程技术-工程:宇航
CiteScore
3.00
自引率
5.60%
发文量
58
期刊介绍: Founded in 1954, the Journal of the Astronautical Sciences is devoted to the science and technology of astronautics. The journal presents significant new results, important insights and state of the art surveys in all areas of astrodynamics, celestial mechanics, atmospheric flight mechanics, navigation and guidance, and space-related sciences. Coverage includes such topics as attitude dynamics, orbit determination, trajectory optimization, space mission analysis, numerical methods, maneuvering flight vehicles, dynamics and control of large flexible space structures and space science related to new astronautical systems and their applications
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