Optimal aeroassisted orbital rendezvous and interception

Hongwei Han*, Dong Qiao, Hongbo Chen

*Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Optimal trajectories of aeroassisted orbital rendezvous and interception can be found when considering the general elliptic initial and target orbits. In this paper, both the minimum-fuel and minimum-time cases are taken into account so as to analyze the corresponding optimal results. Specifically, the initial state constraints at deorbit position and atmospheric entry have been re-derived firstly under the premise that the waiting time before the deorbit maneuver is taken as an optimization variable. Secondly, considering the limitation of factors such as heating-rate and load, the optimal trajectories of the aeroassisted orbital rendezvous with minimum-fuel and minimum-time are given. Besides, the profiles of relevant control variables are shown. Because the interception does not need terminal brake impulse strictly, the minimum-fuel aeroassisted interception problem under total time constraint is solved. The result indicates that the time constraints should be imposed prudently because they will increase three different kind of loads effected on chase vehicle. Finally, when under different maximum allowable distance of interception position situation, the optimal results of the minimum-time interception are conducted in detail.

Original languageEnglish
Title of host publicationDynamics and Control of Space Systems
EditorsJeng-Shing Chern, Ya-Zhong Luo, Xiao-Qian Chen, Lei Chen
PublisherUnivelt Inc.
Pages1889-1908
Number of pages20
ISBN (Print)9780877036531
Publication statusPublished - 2018
Event4th IAA Conference on Dynamics and Control of Space Systems, DYCOSS 2018 - Changsha, China
Duration: 21 May 201823 May 2018

Publication series

NameAdvances in the Astronautical Sciences
Volume165
ISSN (Print)0065-3438

Conference

Conference4th IAA Conference on Dynamics and Control of Space Systems, DYCOSS 2018
Country/TerritoryChina
CityChangsha
Period21/05/1823/05/18

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