Design and development of Cartesian propulsion system of the autonomous docking module for target acquisition
https://doi.org/10.25206/2588-0373-2023-7-3-70-81
EDN: OGSFTS
Abstract
The concept of building an orbital complex for operational interception of a target is proposed, including in its composition the method of ballistic construction of operational interception, recommendations to the design appearance of the Cartesian propulsion system of the autonomous docking module, functioning at the stage of close-in guidance during tether delivery from the upper stage to the target, at the stage of capture and transfer of the target to the disposal orbit as part of the rotating tether space system. As a criterion for selecting the Cartesian propulsion system design (fuel reserves, thrust of each chamber and their number, minimum change in the coordinates of the autonomous docking module center of mass over the entire interval of Cartesian propulsion system operation), the minimum mass of the autonomous docking module is taken. For comparison, two methods of constructing the ballistic scheme of target intercept are considered: the classical method, with the orbital complex entering the target orbit with zero relative velocities, and the method based on the use of rotating tether space system, with the orbital complex entering the target intercept orbit with velocities at the rendezvous point of up to 200 m/s.
Keywords
About the Authors
V. I. TrushlyakovRussian Federation
Trushlyakov Valeriy Ivanovich, Doctor of Technical Sciences, Professor of Aircraft and Rocket Building Department
AuthorID (RSCI): 9914
AuthorID (SCOPUS): 35792803600
ResearcherID: D-7270-2015
Omsk, Prospect Mira, 11, 644050
V. V. Yudintsev
Russian Federation
Yudintsev Vadim Vyacheslavovich, Candidate of Technical Sciences, Assistant Professor, Senior Researcher at the Research Laboratory «Steam and Gas Mixtures in Launch Vehicle Designs»
AuthorID (SCOPUS): 36676070000 ResearcherID: N-1367-2014
Omsk, Prospect Mira, 11, 644050
V. A. Urbansky
Russian Federation
Urbansky Vladislav Alexandrovich, Graduate Student of Aircraft and Rocket Building Department
AuthorID (RSCI): 978934
ResearcherID: AAX-1703-2021
Omsk, Prospect Mira, 11, 644050
S. Yu. Onishchuk
Russian Federation
Onishchuk Sergei Yurievich, Graduate Student of Aircraft and Rocket Building Department
AuthorID (RSCI): 979474
AuthorID (SCOPUS): 57211128570
ResearcherID: D-9183-2019
Omsk, Prospect Mira, 11, 644050
D. A. Klenin
Russian Federation
Klenin Danila Andreyevich, Laboratory Assistant at the Research Laboratory «Steam and Gas Mixtures in Launch Vehicle Designs»
AuthorID (RSCI): 1210637
Omsk, Prospect Mira, 11, 644050
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Review
For citations:
Trushlyakov V.I., Yudintsev V.V., Urbansky V.A., Onishchuk S.Yu., Klenin D.A. Design and development of Cartesian propulsion system of the autonomous docking module for target acquisition. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2023;7(3):70-81. (In Russ.) https://doi.org/10.25206/2588-0373-2023-7-3-70-81. EDN: OGSFTS
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