Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight

The dynamic analysis and motion control of a spinning tether system for an interplanetary mission to Mars is considered. The space system consists of two spacecraft connected by a tether with thrusts to control its movement. The movements of the tether system in the sphere of action of the Earth, on...

Full description

Bibliographic Details
Main Authors: H. Lu, C. Wang, Yu. M. Zabolotnov
Format: Article
Language:Russian
Published: Association «Technology Platform «National Information Satellite System» 2021-03-01
Series:Космические аппараты и технологии
Subjects:
Online Access:http://journal-niss.ru/downloads.php?vol_all=35&paper_num=3
id doaj-10f693e366004d17a9ce34b899a51587
record_format Article
spelling doaj-10f693e366004d17a9ce34b899a515872021-04-05T07:31:23ZrusAssociation «Technology Platform «National Information Satellite System»Космические аппараты и технологии2618-79572021-03-0151273410.26732/j.st.2021.1.03Dynamic analysis and motion control of spinning tether system during its Earth to Mars flightH. Lu0https://orcid.org/0000-0003-4695-3424C. Wang1https://orcid.org/0000-0002-1358-7731Yu. M. Zabolotnov2https://orcid.org/0000-0002-0409-3107Northwestern Polytechnic UniversityNorthwestern Polytechnic UniversitySamara National Research UniversityThe dynamic analysis and motion control of a spinning tether system for an interplanetary mission to Mars is considered. The space system consists of two spacecraft connected by a tether with thrusts to control its movement. The movements of the tether system in the sphere of action of the Earth, on the interplanetary trajectory and in the sphere of action of Mars are consistently analyzed. In near-Earth orbit, the transfer of the system into rotation with the help of jet engines installed on the end spacecrafts is considered. The spin of the system is used to create artificial gravity during the interplanetary flight. The tether system spins in the plane perpendicular to the plane of the orbital motion of the center of mass of the system. To describe spatial motion of the system, a mathematical model is used, in which the tether is represented as a set of material points with viscoelastic unilateral mechanical connections. When calculating the movement of the system, an approach based on the method of spheres of action is used. Spacecrafts are considered as material points. The level of gravity and spin of tether system is controlled by thrusters. The structure of the controller for controlling the angular speed of rotation of the tether system is proposed. The simulation results are presented to confirm the effectiveness of the proposed control algorithm, which provides a given level of artificial gravity for th e interplanetary mission under consideration.http://journal-niss.ru/downloads.php?vol_all=35&paper_num=3spinning tether systemjet engineartificial gravityinterplanetary flight
collection DOAJ
language Russian
format Article
sources DOAJ
author H. Lu
C. Wang
Yu. M. Zabolotnov
spellingShingle H. Lu
C. Wang
Yu. M. Zabolotnov
Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
Космические аппараты и технологии
spinning tether system
jet engine
artificial gravity
interplanetary flight
author_facet H. Lu
C. Wang
Yu. M. Zabolotnov
author_sort H. Lu
title Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
title_short Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
title_full Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
title_fullStr Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
title_full_unstemmed Dynamic analysis and motion control of spinning tether system during its Earth to Mars flight
title_sort dynamic analysis and motion control of spinning tether system during its earth to mars flight
publisher Association «Technology Platform «National Information Satellite System»
series Космические аппараты и технологии
issn 2618-7957
publishDate 2021-03-01
description The dynamic analysis and motion control of a spinning tether system for an interplanetary mission to Mars is considered. The space system consists of two spacecraft connected by a tether with thrusts to control its movement. The movements of the tether system in the sphere of action of the Earth, on the interplanetary trajectory and in the sphere of action of Mars are consistently analyzed. In near-Earth orbit, the transfer of the system into rotation with the help of jet engines installed on the end spacecrafts is considered. The spin of the system is used to create artificial gravity during the interplanetary flight. The tether system spins in the plane perpendicular to the plane of the orbital motion of the center of mass of the system. To describe spatial motion of the system, a mathematical model is used, in which the tether is represented as a set of material points with viscoelastic unilateral mechanical connections. When calculating the movement of the system, an approach based on the method of spheres of action is used. Spacecrafts are considered as material points. The level of gravity and spin of tether system is controlled by thrusters. The structure of the controller for controlling the angular speed of rotation of the tether system is proposed. The simulation results are presented to confirm the effectiveness of the proposed control algorithm, which provides a given level of artificial gravity for th e interplanetary mission under consideration.
topic spinning tether system
jet engine
artificial gravity
interplanetary flight
url http://journal-niss.ru/downloads.php?vol_all=35&paper_num=3
work_keys_str_mv AT hlu dynamicanalysisandmotioncontrolofspinningtethersystemduringitsearthtomarsflight
AT cwang dynamicanalysisandmotioncontrolofspinningtethersystemduringitsearthtomarsflight
AT yumzabolotnov dynamicanalysisandmotioncontrolofspinningtethersystemduringitsearthtomarsflight
_version_ 1721541036396773376