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Development of Precise Lunar Orbit Propagator and Lunar Polar Orbiter's Lifetime Analysis

  • 투고 : 2010.01.22
  • 심사 : 2010.03.15
  • 발행 : 2010.06.15

초록

To prepare for a Korean lunar orbiter mission, a precise lunar orbit propagator; Yonsei precise lunar orbit propagator (YSPLOP) is developed. In the propagator, accelerations due to the Moon's non-spherical gravity, the point masses of the Earth, Moon, Sun, Mars, Jupiter and also, solar radiation pressures can be included. The developed propagator's performance is validated and propagation errors between YSPOLP and STK/Astrogator are found to have about maximum 4-m, in along-track direction during 30 days (Earth's time) of propagation. Also, it is found that the lifetime of a lunar polar orbiter is strongly affected by the different degrees and orders of the lunar gravity model, by a third body's gravitational attractions (especially the Earth), and by the different orbital inclinations. The reliable lifetime of circular lunar polar orbiter at about 100 km altitude is estimated to have about 160 days (Earth's time). However, to estimate the reasonable lifetime of circular lunar polar orbiter at about 100 km altitude, it is strongly recommended to consider at least $50\;{\times}\;50$ degrees and orders of the lunar gravity field. The results provided in this paper are expected to make further progress in the design fields of Korea's lunar orbiter missions.

키워드

참고문헌

  1. Abad, A., Elipe, A., & Tresaco, E. 2009, JGCD, 32, 888, doi: 10.2514/1.38350
  2. Akim, E. L. 1966, Dokl Akad Nauk SSSR, 170, 799
  3. Bills, B. G. & Ferrari, A. J. 1980, JGR, 85, 1013, doi: 10.1029/JB085iB02p01013
  4. Carranza, E., Konopliv, A., & Ryne, M. 1999, AAS 99-325
  5. Cho, D. H., Jeong, B. Y., Lee, D. H., & Bang, H. C. 2009, Int. J. Aeronaut. Space. Sci., 10, 67 https://doi.org/10.5139/IJASS.2009.10.1.067
  6. Davies, M. E. & Colvin, T. R. 2000, JGR E: Planets, 105, 20277, doi: 10.1029/1999JE001165
  7. Elipe, A. & Lara, M. 2003, JGCD, 26, 238, doi: 10.2514/2.5064
  8. Ferrari, A. J. 1977, JGR, 82, 3065, doi: 10.1029/JB082i020p03065
  9. Floberghagen, R. 2002, Lunar Gravimetry: Revealing the Far-Side (Dordrecht; London: Kluwer Academic), p.16, pp.241-243
  10. Foing, B. H. & Ehrenfreund, P. 2008, AdSpR, 42, 235, doi: 10.1016/j.asr.2008.03.011
  11. Folta, D. & Quinn, D. 2006, in AIAA/AAS Astrodynamics Specialist Conference and Exhibit (Keystone, CO: AIAA/AAS), p.AIAA 2006-6749
  12. Goldstein, D. B., Steven Nerem, R., Barker, E. S., Victor Austin, J., Binder, A. B., & Feldman, W. C. 1999, GeoRL, 26, 1653, doi: 10.1029/1999GL900384
  13. Konopliv, A. S., Asmar, S. W., Carranza, E., Sjogren, W. L., & Yuan, D. N. 2001, Icar, 150, 1, doi: 10.1006/icar.2000.6573
  14. Konopliv, A. S., Binder, A. B., Hood, L. L., Kucinskas, A. B., Sjogren, W. L., & Williams, J. G. 1998, Sci, 281, 1476, doi: 10.1126/science.281.5382.1476
  15. Konopliv, A. S., Sjogren, W. L., Wimberly, R. N., Cook, R.A., & Alwar, V. A. 1993, AAS 93-622
  16. Konopliv, A. S. & Yuan, D. N. 1999, in 30th Lunar and Planetary Science Conference (Houston, TX: Lunar and Planetary Institute), p.1067 (Abstract)
  17. Lee, D. H. & Bang, H. C. 2007, J. Korean Soc. Aeronaut. Sci., 35, 647 https://doi.org/10.5139/JKSAS.2007.35.7.647
  18. Lemoine, F. G. R., Smith, D. E., Zuber, M. T., Neumann, G. A., & Rowlands, D. D. 1997, JGR, 102, 16339, doi: 10.1029/97je01418
  19. Liu, A. S. & Laing, P. A. 1971, Sci, 173, 1017, doi: 10.1126/science.173.4001.1017
  20. Lorell, J. & Sjogren, W. L. 1968, Sci, 159, 625, doi: 10.1126/science.159.3815.625
  21. Ramanan, R. V. & Adimurthy, V. 2005, J. Earth, Syst. Sci., 114, 619 https://doi.org/10.1007/BF02715946
  22. Meyer, K. W., Desai, P. N., Buglia, J. J., & Langley Research Center. 1994, NASA Technical Paper 3394: Lifetimes of Lunar Satellite Orbits (Springfield, VA: National Aeronautics and Space Administration), pp.9-10
  23. Michael, W. H. & Blackshear, W. T. 1972, Earth, Moon, and Planets, 3, 388, doi: 10.1007/BF00562460
  24. Park, S. Y. & Junkins, J. L. 1995, J. Astronaut. Sci., 43, 207
  25. Roncoli, R. B. 2005, Lunar Constants and Models Document [JPL D-32296] (Pasadena, CA: Jet Propulsion Laboratory), p.3-8
  26. Russell, R. P. & Lara, M. 2007, JGCD, 30, 982, doi: 10.2514/1.27104
  27. Seidelmann, P., Archinal, B., A'hearn, M., Conrad, A., Consolmagno, G., Hestroffer, D., Hilton, J., Krasinsky, G., Neumann, G., Oberst, J., Stooke, P., Tedesco, E., Tholen, D., Thomas, P., & Williams, I. 2007, CeMDA, 98, 155, doi: 10.1007/s10569-007-9072-y
  28. Song, Y. J., Park, S. Y., Choi, K. H., & Sim, E. S. 2008, J. Korean Soc. Aeronaut. Sci., 36, 357 https://doi.org/10.5139/JKSAS.2008.36.4.357
  29. Song, Y. J., Jin, W., Park, S. Y., Choi, K. H., & Sim, E. S. 2009a, JASS, 26, 171 https://doi.org/10.5140/JASS.2009.26.2.171
  30. Song, Y. J., Park, S. Y., Choi, K. H., & Sim, E. S. 2009b, J. Korean Soc. Aeronaut. Sci., 37, 843 https://doi.org/10.5139/JKSAS.2009.37.9.843
  31. Song, Y. J., Park, S. Y., Choi, K. H., & Sim, E. S. 2009c, AdSpR, 43, 1391, doi: 10.1016/j.asr.2009.01.020
  32. Standish, E. M. 1998, JPL Planetary and Lunar Ephemerides, DE405/LE405 (Los Angeles, CA: Jet Propulsion Laboratory), pp.1-6
  33. Tuckness, D. G. 1995a, JSpRo, 32, 353
  34. Tuckness, D. G. 1995b, JSpRo, 32, 370
  35. Vallado, D. A. & McClain, W. D. 2001, Fundamentals of astrodynamics and applications, 2nd ed. (Boston: Kluwer Academic Publishers), pp.171-172

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