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Adaptive Methods of the Flybys Constructing in the Jovian System with the Orbiter Insertion Around the Galilean Moon

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Abstract

We consider space expeditions with a long-term spacecraft stay near the studied celestial body (artificial satellites of small bodies of the Solar System), or expeditions with a possible spacecraft landing on the surface of the celestial body (for example, the ESA Jovian Icy Moon Explorer JUICE mission, and the Russian prospective project Laplace‑P). An effective formalism is proposed for creating adaptive search scenarios for low-cost combined spacecraft trajectories, focused on the possibility of using high-performance computing resources of the computer experimentation. Examples are given of the implementation of this formalism for searching for combinations of interlunar gravitational maneuvers in the Jovian system with the aim of entering the orbit of the Jovian moon’s artificial satellite.

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REFERENCES

  1. Borovin, G.K., Golubev, Yu.F., Grushevskii, A.V., Zaslavskii, G.S., Zakhvatkin, M.V., Koryanov, V.V., Lavrenov, S.M., Morskoi, I.M., Simonov, A.V., Stepan’yants, V.A., Tuchin, A.G., Tuchin, D.A., and Yaroshevskii, V.S., Ballistiko-navigatsionnoe obespechenie poletov avtomaticheskikh kosmicheskikh apparatov k telam Solnechnoi sistemy (Ballistic-Navigational Support of Automatic Spacecrafts Flights to the Bodies of Solar System), Tuchin, A.G., Ed., Khimki, Moscow Oblast: NPO Lavochkina, 2018.

    Google Scholar 

  2. Boutonnet, A. and Schoenmaekers, J., Mission analysis for the JUICE Mission, Proc. 22nd AAS/AIAA Space Flight Mechanics Meeting “Spaceflight Mechanics 2012,” Charleston, South Carolina, Advances in the Astronautical Sciences Series vol. 143, San Diego, CA: Univelt, 2012, pp. 1561–1578.

  3. Campagnola, S. and Russell, R., Endgame problem part 2: multi-body technique and the Tisserand–Poincaré graph, J. Guid., Control, Dyn., 2010, vol. 33, no. 2, pp. 476–486.

    Article  ADS  Google Scholar 

  4. Divine, N. and Garrett, H.B., Charged particle distribution in Jupiter’s magnetosphere, J. Geophys. Res.: Space Phys., 1983, vol. 88, no. A9, pp. 6889–6903.

    Article  ADS  Google Scholar 

  5. Eneev, T.M. and Kozlov, N.N., The principle of virtual contacts. Calculation of the accumulation of planets for a new cosmogonic model, Preprint of the Keldysh Inst. of Applied Mathematics, Russ. Acad. Sci., Moscow, 1979, no. 78.

  6. Navigation and Ancillary Information Facility (NAIF). http://naif.jpl.nasa.gov/.

  7. Ephemeris of Jupiter’s Galilean satellites. ftp://naif.jpl.nasa.gov/pub/naif/generic_kernels/. Accessed December 20, 2019.

  8. Golubev, Yu.F., Grushevskii, A.V., Koryanov, V.V., and Tuchin, A.G., Synthesis of space mission scenarios in the Jovian system using gravity assist maneuvers, Dokl. Phys., 2014a, vol. 59, no. 5, pp. 226–228.

    Article  ADS  Google Scholar 

  9. Golubev, Yu., Grushevskii, A., Koryanov, V., and Tuchin, A., Gravity assist maneuvers of a spacecraft in Jupiter system, J. Comput. Syst. Sci. Int., 2014b, vol. 53, no. 3, pp. 445–463.

    Article  MathSciNet  Google Scholar 

  10. Golubev, Yu., Grushevskii, A., Koryanov, V., Tuchin, A., and Tuchin, D., Bifurcation points during gravity assist tours in the Jovian system, Dokl. Phys., 2015, vol. 60, no. 5, pp. 210–213.

    Article  ADS  Google Scholar 

  11. Grushevskii, A., Golubev, Yu., Koryanov, V., Tuchin, A., and Tuchin, D., Advanced methods of low cost mission design for the Galilean moons exploration, Trans. Jpn. Soc. Aeronaut. Space Sci., Aerospace Technology, 2018, vol. 16, no. 7, pp. 679–686.

    MATH  Google Scholar 

  12. Keldysh, M.V., Vlasova, Z.P., Lidov, M.L., Okhotsimskii, D.E., and Platonov, A.K., The trajectories of the flyby of the Moon and analysis of the conditions for photographing and information transmitting, in Izbrannye trudy. Raketnaya tekhnika i kosmonavtika (Selected Research Works: Rockets and Astronautics), Moscow: Nauka, 1988, pp. 261–309.

  13. Labunsky, A.V., Papkov, O.V., and Sukhanov, K.G., Multiple Gravity Assist Interplanetary Trajectories, London: Gordon and Breach, 1998.

    Google Scholar 

  14. Miller, J.K. and Weeks, C.J., Application of Tisserand’s criterion to the design of gravity assist trajectories, Proc. AIAA/AAS Astrodynamics Specialist Conf. and Exhibit, Monterey, Reston, VA: Am. Inst. Aeronaut. Astronaut., 2002.

  15. Minovitch, M.A., The Determination and Characteristics of Ballistic Interplanetary Trajectories Under the Influence of Multiple Planetary Attractions: JPL Technical Report No. 32-464, Pasadena, CA: Jet Propulsion Lab., 1963.

  16. Podzolko, M.V. and Getselev, I.V., Radiation conditions of mission to Jupiter’s Moon Ganymede, Proc. Int. Colloquium and Workshop “Ganymede Lander: Scientific Goals and Experiments,” March 4–8, 2013, Moscow, 2013.

  17. Prikladnaya nebesnaya mekhanika i upravlenie dvizheniem. Sbornik statei, posvyashchennyi 90-letiyu so dnya rozhdeniya D.E. Okhotsimskogo (Applied Celestial Mechanics and Motion Control: Collection of Research Works Dedicated to the 90th Anniversary of D.E. Okhotsimskii), Eneev, T.M., Ovchinnikov, M.Yu., and Golikov, A.R., Eds., Moscow: Inst. Prikl. Matem. im. M.V. Keldysha, Ross. Akad. Nauk, 2010.

  18. Sobol’, I.M., Evenly distributed sequences with extra uniformity, Zh. Vychisl. Mat. Mat. Fiz., 1976, vol. 16, no. 5, pp. 1332–1337

  19. Tisserand, F.F., Traité de Mécanique Céleste, Paris: Gauthier-Villars et fils., 1896, vol. 4, pp. 203–205.

    Google Scholar 

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Correspondence to Yu. F. Golubev, A. V. Grushevskii, V. V. Koryanov, A. G. Tuchin or D. A. Tuchin.

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Golubev, Y.F., Grushevskii, A.V., Koryanov, V.V. et al. Adaptive Methods of the Flybys Constructing in the Jovian System with the Orbiter Insertion Around the Galilean Moon. Sol Syst Res 54, 318–328 (2020). https://doi.org/10.1134/S0038094620040061

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  • DOI: https://doi.org/10.1134/S0038094620040061

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