Orbital motion control of an electrically charged spacecraft

被引:1
|
作者
Klyushin, M. A. [1 ]
Tikhonov, A. A. [1 ]
Giri, D. K. [2 ]
机构
[1] St Petersburg State Univ, 7-9 Univ nab, St Petersburg 199034, Russia
[2] Indian Inst Technol, Kanpur 208016, Uttar Pradesh, India
基金
俄罗斯科学基金会;
关键词
Spacecraft; Geomagnetic field; Lorentz force; Orbital motion control; Stabilization; Variable electrical charge; ATTITUDE STABILIZATION; ELECTRODYNAMIC CONTROL; DYNAMICS;
D O I
10.1016/j.actaastro.2024.10.043
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
In this paper, the orbital motion of an electrically charged spacecraft in the gravitational and magnetic fields of the Earth is investigated. The "direct magnetic dipole"is considered as a model of the geomagnetic field. The nonlinear non-autonomous system of differential equations of motion of the spacecraft center of mass in the Cartesian and spherical coordinate systems is derived. The analytical study of the influence of the Lorentz force on the orbital motion of a charged spacecraft is carried out. The approximate solution of the differential system is found. The results of numerical simulation of the spacecraft orbital motion based on the derived system of differential equations are presented. The analytical and numerical solutions are compared. The problem of stabilizing the spacecraft's center of mass in the orbital plane is considered. Feedback control methods based on the use of jet engines are proposed. The technical justification of the proposed control methods is carried out. Asa result, stabilization of an electrically charged spacecraft in a small neighborhood of the plane of the initial orbit is achieved. The motion of a spacecraft with a variable electric charge is considered. Methods of controlling orbital motion due to low thrust as a result of the Lorentz force effect are proposed.
引用
收藏
页码:626 / 636
页数:11
相关论文
共 50 条
  • [31] Electrically charged
    Langston, L
    MECHANICAL ENGINEERING, 2002, 124 (06) : 50 - 52
  • [32] INFORMATIONAL APPROACHES TO ANGULAR MOTION CONTROL OF SPACECRAFT
    PETROV, BN
    KRYMOV, AB
    MITROSHIN, EI
    ACTA ASTRONAUTICA, 1978, 5 (10) : 845 - 849
  • [33] The control of chaotic attitude motion of a perturbed spacecraft
    Kong, Ling-yun
    Zhou, Feng-qi
    Zou, Jun
    2006 CHINESE CONTROL CONFERENCE, VOLS 1-5, 2006, : 740 - +
  • [34] Angular motion control of spacecraft by vector measurements
    Yefymenko N.V.
    Lutsenko N.V.
    Journal of Automation and Information Sciences, 2019, 51 (04) : 36 - 47
  • [35] Stochastic Reachability for Control of Spacecraft Relative Motion
    Lesser, Kendra
    Oishi, Meeko
    Erwin, R. Scott
    2013 IEEE 52ND ANNUAL CONFERENCE ON DECISION AND CONTROL (CDC), 2013, : 4705 - 4712
  • [36] Control of rotational motion with application to spacecraft attitude
    Wisniewski, R
    PROCEEDINGS OF THE 40TH IEEE CONFERENCE ON DECISION AND CONTROL, VOLS 1-5, 2001, : 4610 - 4615
  • [37] Robust Control System for Spacecraft Motion Trajectory
    Samigulina, Zarina
    Shiryayeva, Olga
    Samigulina, Galina
    Fourati, Hassen
    EUROPEAN JOURNAL OF PURE AND APPLIED MATHEMATICS, 2014, 7 (03): : 289 - 303
  • [38] On the in-plane control of spacecraft relative motion
    Mitchell, JW
    Richardson, DL
    PROCEEDINGS OF THE 2001 AMERICAN CONTROL CONFERENCE, VOLS 1-6, 2001, : 730 - 731
  • [39] Closed-Loop Charged Relative Motion Experiments Simulating Constrained Orbital Motion
    Seubert, Carl R.
    Schaub, Hanspeter
    JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2010, 33 (06) : 1856 - 1865
  • [40] ANALYSIS OF THE EFFECTS OF ELECTROMAGNETIC FORCES ON THE RELATIVE MOTION OF A CHARGED SPACECRAFT FORMATION FLYING
    Tealib, Shafeeq Kaheal
    Abdel-Aziz, Yehia
    Awad, Mervat El-Said
    Khalil, Khalil Ibrahim
    Radwan, Mohmed
    ARTIFICIAL SATELLITES-JOURNAL OF PLANETARY GEODESY, 2020, 55 (03): : 87 - 99