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COSMIC APPARATUS GUIDANCE SYSTEMS: CONSTRUCTION PRINCIPLES, CLASSIFICATION, AND EFFECTIVENESS ASSESSMENT

Field of Science:Artificial IntelligenceComputational Theory and MathematicsComputer Graphics and Computer-Aided DesignComputer Networks and CommunicationsInformation SystemsSignal ProcessingSoftware
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18._Писецкий_Ю.В.__Воти....pdf

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ARTICLE ANNOTATION

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The article examines the classification of orientation and stabilization systems for spacecraft, as well as the set of factors determining the choice of their architecture during design. The main orientation tasks related to antenna orientation, solar panel orientation, and the execution of scientific and maneuvering operations are described. The characteristics of the instruments forming the basic coordinate system, including gyroscopic instruments, star sensors, and solar and terrestrial orientation devices, are presented. The operating principles of passive, active, and combined systems were analyzed, and their operational advantages and limitations were shown. The advantages and disadvantages of different types of systems, in particular their accuracy, energy efficiency, technological complexity, and duration of operation, are analyzed. The relevance of using combined systems that combine passive methods of energy efficiency and high accuracy of active control tools is emphasized.

AUTHORS

Y.Pisetskiy

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

K.Votinov

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

Z.Abduraxmanova

"MUHAMMAD AL-XORAZMIY NOMIDAGI TOSHKENT AXBOROT TEXNOLOGIYALARI UNIVERSITETI" DAVLAT MUASSASASI

Tags

# and# system# systems# active# stabilization# orientation# spacecraft# passive# combined

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