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Combining magnetic and Lorentz attitude control systems to solve five satellite stabilization problems. / Тихонов, Алексей Александрович; Giri, Dipak Kumar; Максименко, Маргарита Владимировна; Клюшин, Максим Александрович.

в: Cybernetics and Physics, Том 14, № 1, 28.06.2025, стр. 74-82.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{bcbf3e239dc641dc8e08e35ea99285ab,
title = "Combining magnetic and Lorentz attitude control systems to solve five satellite stabilization problems",
abstract = "A satellite moving in the gravitational and magnetic fields of Earth is considered. The possibility of designing an integrated attitude control system that combined magnetic and Lorentz control systems is being studied. The expediency of such an association is shown. The effectiveness of the constructed electrodynamic attitude control system for stabilization of different programmed motions of the satellite is confirmed. An algorithm for constructing control torques is shown for each of the considered problems. The results of the computer simulation are presented. The three-axial stabilization of a satellite in the orbital frame requires restoring and dissipative components of control torques. In general case for monoaxial stabilization of a satellite in the orbital frame the control parameters can be constructed as a sum of restoring, dissipative, and compensating components. Stabilization in two-axis programmed rotation requires one to compensate for the specified gyroscopic torque, and an additional term can be introduced into one of the control vectors. For the problem of three-axial stabilization in the Koenig frame, the gravity gradient torque can be compensated by means of the Lorentz torque. Finally, the three-axial stabilization of a satellite in the magnetoLorentz frame also involves the creation of a compensating torque.",
keywords = "Lorentz torque, Satellite, attitude stabilization, electrodynamic attitude control system, magnetic torque",
author = "Тихонов, {Алексей Александрович} and Giri, {Dipak Kumar} and Максименко, {Маргарита Владимировна} and Клюшин, {Максим Александрович}",
year = "2025",
month = jun,
day = "28",
doi = "10.35470/2226-4116-2024-14-1-74-82",
language = "English",
volume = "14",
pages = "74--82",
journal = "Cybernetics and Physics",
issn = "2223-7038",
publisher = "IPACS",
number = "1",

}

RIS

TY - JOUR

T1 - Combining magnetic and Lorentz attitude control systems to solve five satellite stabilization problems

AU - Тихонов, Алексей Александрович

AU - Giri, Dipak Kumar

AU - Максименко, Маргарита Владимировна

AU - Клюшин, Максим Александрович

PY - 2025/6/28

Y1 - 2025/6/28

N2 - A satellite moving in the gravitational and magnetic fields of Earth is considered. The possibility of designing an integrated attitude control system that combined magnetic and Lorentz control systems is being studied. The expediency of such an association is shown. The effectiveness of the constructed electrodynamic attitude control system for stabilization of different programmed motions of the satellite is confirmed. An algorithm for constructing control torques is shown for each of the considered problems. The results of the computer simulation are presented. The three-axial stabilization of a satellite in the orbital frame requires restoring and dissipative components of control torques. In general case for monoaxial stabilization of a satellite in the orbital frame the control parameters can be constructed as a sum of restoring, dissipative, and compensating components. Stabilization in two-axis programmed rotation requires one to compensate for the specified gyroscopic torque, and an additional term can be introduced into one of the control vectors. For the problem of three-axial stabilization in the Koenig frame, the gravity gradient torque can be compensated by means of the Lorentz torque. Finally, the three-axial stabilization of a satellite in the magnetoLorentz frame also involves the creation of a compensating torque.

AB - A satellite moving in the gravitational and magnetic fields of Earth is considered. The possibility of designing an integrated attitude control system that combined magnetic and Lorentz control systems is being studied. The expediency of such an association is shown. The effectiveness of the constructed electrodynamic attitude control system for stabilization of different programmed motions of the satellite is confirmed. An algorithm for constructing control torques is shown for each of the considered problems. The results of the computer simulation are presented. The three-axial stabilization of a satellite in the orbital frame requires restoring and dissipative components of control torques. In general case for monoaxial stabilization of a satellite in the orbital frame the control parameters can be constructed as a sum of restoring, dissipative, and compensating components. Stabilization in two-axis programmed rotation requires one to compensate for the specified gyroscopic torque, and an additional term can be introduced into one of the control vectors. For the problem of three-axial stabilization in the Koenig frame, the gravity gradient torque can be compensated by means of the Lorentz torque. Finally, the three-axial stabilization of a satellite in the magnetoLorentz frame also involves the creation of a compensating torque.

KW - Lorentz torque

KW - Satellite

KW - attitude stabilization

KW - electrodynamic attitude control system

KW - magnetic torque

UR - https://www.mendeley.com/catalogue/a6f0ad2e-4a99-363b-b948-34d8f040eca1/

U2 - 10.35470/2226-4116-2024-14-1-74-82

DO - 10.35470/2226-4116-2024-14-1-74-82

M3 - Article

VL - 14

SP - 74

EP - 82

JO - Cybernetics and Physics

JF - Cybernetics and Physics

SN - 2223-7038

IS - 1

ER -

ID: 137679137