Prioritizing Orbital Debris for Active Debris Removal Missions

被引:0
|
作者
Hakima, Houman [1 ,3 ]
Emami, M. Reza [2 ]
机构
[1] Univ Toronto, Inst Aerosp Studies, 4925 Dufferin St, Toronto, ON M3H 5T6, Canada
[2] Univ Toronto, 4925 Dufferin St, Toronto, ON M3H 5T6, Canada
[3] Lulea Univ Technol, Rymdcampus E10, S-98128 Kiruna, Sweden
关键词
PROBABILITY; COLLISION;
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
This paper introduces a method of prioritizing orbital debris for future active debris removal missions, based on the evaluation of the total collision probability of each cataloged debris. The United States Space Surveillance Network actively monitors, tracks, and catalogs space debris orbiting Earth. The catalog is updated routinely, and is available to the public in the form of two-line element data. The total collision probability of a debris is defined as the overall probability of the debris colliding with any other debris in a given time window. The proposed method uses the two-line element data pertaining to each debris in the catalog to project the future state of the debris, i.e., the classical orbital elements, at predefined time steps for a given time window. The effects of orbital perturbations are considered wherever applicable. The relative distances between all debris are estimated in each time step, and pairwise collision probabilities are calculated for any two debris objects in the catalog. To obtain the total collision probability for a debris, the pairwise collision probabilities pertaining to the debris are summed. Further, for every debris object the trend in the total collision probability as the time window progresses is quantified, and debris objects are ranked based on their chance of collision in the time window. The outcome of the study is compared with target debris proposed in other studies.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] The many futures of active debris removal
    White, Adam E.
    Lewis, Hugh G.
    ACTA ASTRONAUTICA, 2014, 95 : 189 - 197
  • [32] System for an Active Detection of Orbital Debris in Space
    Durin, C.
    Mandeville, J. C.
    Perrin, J. M.
    JOURNAL OF SPACECRAFT AND ROCKETS, 2016, 53 (06) : 1178 - 1184
  • [33] PHYSICAL-PROPERTIES OF ORBITAL DEBRIS AND ORBITAL DEBRIS CLOUDS
    ANZMEADOR, PD
    MATNEY, MJ
    KESSLER, DJ
    SPACE DEBRIS, 1995, 16 (11): : 113 - 117
  • [34] Thermal analysis of space debris for infrared-based active debris removal
    Yilmaz, Ozgun
    Aouf, Nabil
    Checa, Elena
    Majewski, Laurent
    Sanchez-Gestido, Manuel
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2019, 233 (03) : 811 - 822
  • [35] Survey of Tether System Technology for Space Debris Removal Missions
    Aslanov, Vladimir S.
    Ledkov, Alexander S.
    JOURNAL OF SPACECRAFT AND ROCKETS, 2023, 60 (05) : 1355 - 1371
  • [36] Nuclear powered spaceborne laser for orbital debris removal
    Avdeev, Alexey
    Boreysho, Anatoly
    Ivakin, Stanislav
    Katorgin, Boris
    Metelnikov, Artem
    XXII INTERNATIONAL SYMPOSIUM ON HIGH POWER LASER SYSTEMS AND APPLICATIONS, 2018, 11042
  • [37] Application of Asteroid Redirection Methods to Orbital Debris Removal
    Bazzocchi, Michael C. F.
    Emami, M. Reza
    2016 IEEE AEROSPACE CONFERENCE, 2016,
  • [38] What's New for Laser Orbital Debris Removal
    Phipps, Claude
    Lander, Mike
    BEAMED ENERGY PROPULSION: SEVENTH INTERNATIONAL SYMPOSIUM, 2011, 1402
  • [39] Orbital debris-debris collision avoidance
    Mason, James
    Stupl, Jan
    Marshall, William
    Levit, Creon
    ADVANCES IN SPACE RESEARCH, 2011, 48 (10) : 1643 - 1655
  • [40] Overview of the legal and policy challenges of orbital debris removal
    Weeden, Brian
    SPACE POLICY, 2011, 27 (01) : 38 - 43