• Spacecraft Recovery & Remote Sensing
  • Vol. 45, Issue 2, 53 (2024)
Xingming LI, Linli GUO, Ruimin FU, Guoxian ZHENG..., Peipei WANG and Lianqing DONG|Show fewer author(s)
Author Affiliations
  • Beijing Institute of Space Mechanics & Electricity, Beijing 100094, China
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    DOI: 10.3969/j.issn.1009-8518.2024.02.005 Cite this Article
    Xingming LI, Linli GUO, Ruimin FU, Guoxian ZHENG, Peipei WANG, Lianqing DONG. Visibility Analysis of the Cislunar Periodic Orbit for the Halo Orbits near the Earth-Moon L1 and L2 Points[J]. Spacecraft Recovery & Remote Sensing, 2024, 45(2): 53 Copy Citation Text show less
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    [2] D THORNTON, B LITTLE, B STEWARD et al. Dim Cislunar Target Tracking with GEO-and HEO-based Optical Sensors. Journal of Applied Remote Sensing, 16, 044511-044511(2022).

    [3] A P WILMER, R A BETTINGER, B D LITTLE. Cislunar Periodic Orbits for Earth–Moon L1 and L2 Lagrange Point Surveillance. Journal of Spacecraft and Rockets, 59, 1809-1820(2022).

    [4] HITCHENS T. To Infinity Beyond: New Space Fce Unit to Monit ‘xgeo’ Beyond Earth’s bit[EBOL]. [20231025]. https:breakingdefense.com202204toinfinitybeyondnewspacefceunittomonitxgeobeyondearthsbit.

    [6] WILMER A P. Space Domain Awareness Assessment of Cislunar Periodic bits f Lagrange Point Surveillance[D]. WrightPatterson Air Fce Base, Ohio, United States: Air Fce Research Labaty, 2021.

    [7] HOLZINGER M J, CHOW C C, GARRETSON P. A Primer on Cislunar Space: AFRL 20211271[R]. WrightPatterson Air Fce Base, Ohio, United States: Air Fce Research Labaty, 2021.

    [8] WILMER A P, BETTINGER R A, LITTLE B D. Preliminary Viability Assessment of Cislunar Periodic bits f Space Domain Awareness[C]2021 Advanced Maui Optical Space Surveillance Technologies Conference (AMOS). Maui, Hawaii, USA: Maui Economic Development Board, 2021.

    [9] WILMER A, BETTINGER R A, LITTLE B. Cislunar Periodic bit Constellation Assessment f Space Domain Awareness of L1 L2 Halo bits[C]2021 END(Accelerating Space Commerce, Explation, New Discovery), 1517 November 2021. Las Vegas, Nevada & Virtual, USA: AIAA, 2021: 4191.

    [11] DAHLKE J A, WILMER A P, BETTINGER R A. Preliminary Comparative Assessment of L2 L3 Surveillance Using Cislunar Periodic bits[C]AASAIAA Astrodynamics Specialist Conference, August 711, 2022. lotte, Nth Carolina, USA: Springer Nature, 2022: 119.

    [12] D LUJAN, D J SCHEERES. Earth-Moon L2 Quasi-Halo Orbit Family: Characteristics and Manifold Applications. Journal of Guidance, Control, and Dynamics, 45, 2029-2045(2022).

    [13] LS K. HERMES CubeSat Constellation Enhancement by Novel Pointing Strategies Cislunar Space Extension Investigation[D]. Milan, Italy: Milano Politecnico di Milano, 2021.

    [16] FOLTA D, BOSANAC N, ELLIOTT I, et al. Astrodynamics Convention Modeling Reference f Lunar, Cislunar, Libration Point bits[R]. Greenbelt, Maryl, United States: Goddard Space Flight Center of NASA, 2022.

    [17] Systems Tool Kit. Astrogat: Circular Restricted Threebody Problem (cr3bp) Configuration[EBOL]. [20231025]. https:help.agi.comstkindex.htm#trainingAstro_CR3BP.htmHighlight=CR3BP.

    Xingming LI, Linli GUO, Ruimin FU, Guoxian ZHENG, Peipei WANG, Lianqing DONG. Visibility Analysis of the Cislunar Periodic Orbit for the Halo Orbits near the Earth-Moon L1 and L2 Points[J]. Spacecraft Recovery & Remote Sensing, 2024, 45(2): 53
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