Trajectory Design of Potentially Hazardous Asteroid Exploration with Reusable Probes from Cislunar Space

Author:

Peng Chao1,Zhang Renyong1,Gao Yang12

Affiliation:

1. Key Laboratory of Space Utilization, Technology and Engineering Center for Space Utilization, Chinese Academy of Sciences, Beijing 100094, China

2. University of Chinese Academy of Sciences, Beijing 101408, China

Abstract

This article presents a trajectory design problem concerning the exploration of potentially hazardous near-Earth asteroids (PHAs) with reusable probes from cislunar space. A total of 20 probes, making round trips departing from and returning to a service space station in a lunar distant retrograde orbit, are expected to explore as many PHAs as possible by means of close flyby within a 10-year time window. The trajectory design problem was released in the 12th edition of China’s Trajectory Optimization Competition on 20 August 2022, and a total of 10 sets of trajectory solutions were submitted. As the authors who proposed the competition problem, we present in this article the problem descriptions, trajectory analysis, and design, as well as an impressive trajectory solution in which a total of 105 PHAs are explored. It is concluded that taking advantage of reusable probes from cislunar space is a promising option to efficiently explore large numbers of PHAs.

Funder

Autonomous Guidance and Control in Cislunar Space

the Key Laboratory Fund Project for Simulation of Complex Electronic Systems

the Chinese Academy of Sciences Youth Innovation Promotion Association

Publisher

MDPI AG

Reference29 articles.

1. Shapes, structures, and evolution of small bodies;Zhang;Astrodyn,2021

2. Kawaguchi, J. (2011, January 15–17). The Hayabusa mission–its seven years flight. Proceedings of the 2011 Symposium on VLSI Circuits-Digest of Technical Papers, Kyoto, Japan.

3. Hayabusa2 mission overview;Watanabe;Space Sci. Rev.,2017

4. OSIRIS-REx: Sample return from asteroid (101955) Bennu;Lauretta;Space Sci. Rev.,2017

5. Geophysical and orbital environments of asteroid 469219 2016 HO3;Li;Astrodyn,2023

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