Artificial libration points in the task of towing space debris by an ion beam

被引:0
作者
Petukhov, V. G. [1 ]
Riazanov, V. V. [2 ]
机构
[1] Moscow Inst Aviat Technol, 4 Volokolamskoe Shosse, Moscow 125993, Russia
[2] Samara Natl Res Univ, 34 Moskovskoye Shosse, Samara 443086, Russia
来源
IZVESTIYA OF SARATOV UNIVERSITY MATHEMATICS MECHANICS INFORMATICS | 2021年 / 21卷 / 02期
关键词
space debris; noncontact method; stability; libration point; REMOVAL; CAPTURE;
D O I
10.18500/1816-9791-2021-21-2-202-212
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
The work is devoted to the problem of towing space debris from a geostationary orbit to a graveyard orbit by a non-contact method using an ion beam created by the engine of an active spacecraft. For the planar case using the modified Hill task, the points of relative equilibrium (libration points) of the active spacecraft relative to the object of removal are determined and their stability is estimated. It is shown that, depending on the values of radial acceleration, there are up to 6 libration points, but only one point is suitable for towing a space debris object. The required amount of fuel was determined for different values of thrust and specific impulse of the active spacecraft compensating engine during simultaneous operation of electric propulsion thrusters. The results can be used to stabilize the relative motion of the active spacecraft and determine the required amount of fuel for the mission to remove space debris.
引用
收藏
页码:202 / 212
页数:11
相关论文
共 14 条
  • [1] Andrenucci M., 2011, Active Removal of Space Debris - Expanding foam application for active debris removal
  • [2] Ashurbeili I. R., 2011, ELECT J T MAI
  • [3] Motion Control of Space Tug During Debris Removal by a Coulomb Force
    Aslanov, Vladimir
    Yudintsev, Vadim
    [J]. JOURNAL OF GUIDANCE CONTROL AND DYNAMICS, 2018, 41 (07) : 1476 - 1484
  • [4] Final payload test results for the RemoveDebris active debris removal mission
    Forshaw, Jason L.
    Aglietti, Guglielmo S.
    Salmon, Thierry
    Retat, Ingo
    Roe, Mark
    Burgess, Christopher
    Chabot, Thomas
    Pisseloup, Aurelien
    Phipps, Andy
    Bernal, Cesar
    Chaumette, Francois
    Pollini, Alexandre
    Steyn, Willem H.
    [J]. ACTA ASTRONAUTICA, 2017, 138 : 326 - 342
  • [5] Iudintsev, 2018, ELECT J T MAI
  • [6] COLLISION FREQUENCY OF ARTIFICIAL SATELLITES - CREATION OF A DEBRIS BELT
    KESSLER, DJ
    COURPALAIS, BG
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 1978, 83 (NA6): : 2637 - 2646
  • [7] Kluever C.A., 2018, Space Flight Dynamics
  • [8] Autonomous robotic capture of non-cooperative target using visual servoing and motion predictive control
    Larouche, Benoit P.
    Zhu, Zheng H.
    [J]. AUTONOMOUS ROBOTS, 2014, 37 (02) : 157 - 167
  • [9] Merino M., 2013, Progress in Propulsion Physics, V4, P789, DOI 10.1051/eucass/201304789
  • [10] Riazanov V. V., 2019, ELECT J T MAI