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http://dx.doi.org/10.5140/JASS.2021.38.1.65

Geostationary Satellite Station Keeping Robustness to Loss of Ground Control  

Woo, Hyung Je (Agency for Defense Development)
Buckwalter, Bjorn (Satconsult)
Publication Information
Journal of Astronomy and Space Sciences / v.38, no.1, 2021 , pp. 65-82 More about this Journal
Abstract
For the vast majority of geostationary satellites currently in orbit, station keeping activities including orbit determination and maneuver planning and execution are ground-directed and dependent on the availability of ground-based satellite control personnel and facilities. However, a requirement linked to satellite autonomy and survivability in cases of interrupted ground support is often one of the stipulated provisions on the satellite platform design. It is especially important for a geostationary military-purposed satellite to remain within its designated orbital window, in order to provide reliable uninterrupted telecommunications services, in the absence of ground-based resources due to warfare or other disasters. In this paper we investigate factors affecting the robustness of a geostationary satellite's orbit in terms of the maximum duration the satellite's station keeping window can be maintained without ground intervention. By comparing simulations of orbit evolution, given different initial conditions and operations strategies, a variation of parameters study has been performed and we have analyzed which factors the duration is most sensitive to. This also provides valuable insights into which factors may be worth controlling by a military or civilian geostationary satellite operator. Our simulations show that the most beneficial factor for maximizing the time a satellite will remain in the station keeping window is the operational practice of pre-emptively loading East-West station keeping maneuvers for automatic execution on board the satellite should ground control capability be lost. The second most beneficial factor is using short station keeping maneuver cycle durations.
Keywords
GEO satellite; station keeping window; station keeping maneuver; orbit evolution; autonomy; loss of ground control;
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Times Cited By KSCI : 2  (Citation Analysis)
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1 Park BK, Tahk MJ, Bang HC, Autonomous stationkeeping system for geostationary satellite, J. Korean Soc. Aeronaut. Space Sci. 32, 67-76 (2004). https://doi.org/10.5139/JKSAS.2004.32.10.067   DOI
2 Shrivastava SK, Orbital perturbations and stationkeeping of communication satellites, J. Spacecr Rockets, 15, 67-78 (1978). https://doi.org/10.2514/3.27999   DOI
3 Soop EM, Handbook of Geostationary Orbits (Springer, Dordrecht, 1994).
4 United States Naval Observatory [USNO], Approximate solar coordinates (2012) [Internet], viewed 2021 Jan 20, available from: https://web.archive.org/web/20181115153648/http://aa.usno.navy.mil/faq/docs/SunApprox.php
5 Vendy B, Plummer D, Autonomous station keeping of geostationary satellites, automatic control in space, Proceedings of the 8th Symposium, Oxford, UK, 2-6 Jul 1979.
6 Walker MJH, Ireland B, Owens J, A set of modified equinoctial orbit elements, Celest. Mech. 36, 409-419 (1985). https://doi.org/10.1007/BF01227493   DOI
7 Braga-Illa AA, The future of self-contained control of synchronous orbits, Proceedings of the AIAA 3rd Communication Satellite Systems Conference, Los Angeles, CA, 6-8 Apr 1970.
8 Chao CC, On the semi-autonomous stationkeeping of geosynchronous satellites, Proceedings of the AIAA/AAS Astrodynamics Conference, San Diego, CA, 9-11 Aug 1982.
9 Emma BP, Pernicka HJ, Algorithm for autonomous longitude and eccentricity control for geostationary spacecraft, J. Guid. Control Dyn. 26, 483-490 (2003). https://doi.org/10.2514/2.5071   DOI
10 Chao CC, Baker JM, On the propagation and control of geosynchronous orbits, J. Astron. Sci. 31, 99-115 (1983).
11 Gibbs BP, Uetrecht DS, Sayal C, GOES-13 propulsion model, Proceedings of the SpaceOps 2008 Conference, Heidelberg, Germany, 12-16 May 2008.
12 Lee SC, Ju GH, Kim BY, Park BK, A conceptual study of positioning system for the geostationary satellite autonomous operation, J. Korean Soc. Aeronaut. Space Sci. 33, 41-47 (2005). https://doi.org/10.5139/JKSAS.2005.33.11.041   DOI
13 Lee SC, Park BK, Kim BY, Ju G, Park YW, A study on the East/West station keeping planning considering wheel offloading, J. Korean Soc. Aeronaut. Space Sci. 34, 60-66 (2006).
14 Leibold A, Eckstein M, Results of a study of on-board autonomous station keeping of geostationary satellites and its impact to ground systems, Proceedings of the Symposium, AIAA Space Tracking and Data Systems, Arlington, VA, 16-18 Jun 1981, 197-221.
15 Marlow S, Haskell 2010 language report (2010) [Internet], viewed 2021 Jan 20, available from: https://www.haskell.org/onlinereport/haskell2010/
16 Nautical Almanac Office (U.S.), Astronomical Almanac for the Year 2009 and Its Companion, the Astronomical Almanac Online: data for Astronomy, Space Sciences, Geodesy, Surveying, Navigation, and Other Applications (U.S. Government Printing Office, Washington, DC, 2009).