Engineering Journal: Science and InnovationELECTRONIC SCIENCE AND ENGINEERING PUBLICATION
Certificate of Registration Media number Эл #ФС77-53688 of 17 April 2013. ISSN 2308-6033. DOI 10.18698/2308-6033
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  • Английский
Article

An algorithm for controlling the spatial motion of a spacecraft with an imperfectly reflecting solar sail based on the laws of locally optimal control for Earth — Mars heliocentric flight

Published: 09.08.2020

Authors: Khabibullin R.M., Starinova O.L.

Published in issue: #8(104)/2020

DOI: 10.18698/2308-6033-2020-8-2006

Category: Aviation and Rocket-Space Engineering | Chapter: Aircraft Dynamics, Ballistics, Motion Control

The article considers a spatial controlled heliocentric Earth-Mars flight of a spacecraft with an imperfectly reflecting solar sail. A new mathematical model of motion is described taking into account the dynamics of motion relative to the center of mass under the forces and moments from light pressure. A spacecraft control algorithm for implementing the flight is formed on the basis of the laws of locally optimal control for the fastest change of osculating elements. The orientation of the solar sail is controlled using thin-film control elements located around the perimeter of the solar sail surface. As a result of motion simulation, the duration and trajectory of the flight, the control program and the necessary design parameters of a spacecraft with a solar sail are determined.


References
[1] Polyakhova E.N. Kosmicheskiy polet s solnechnym parusom [Space flight with solar sail], Moscow, LIBROKOM Publ., 2011, 320 p.
[2] Johnson L., Whorton M., Heaton A., Pinson R., Laue G., Adams C. Acta Astronautica, 2011, vol. 68, pp. 571‒575. DOI: 10.1016/j.actaastro.2010.02.008
[3] Mori O., Sawada H., Funase R., Morimoto M., Endo T., Yamamoto T., Tsyda Y., Kawakatsu Y., Kawaguchi J. Transactions of the Japan Society for Aeronautical and Space Sciences, Aerospace Technology, 2010, vol. 8, no. 27, 6 p.
[4] Biddy C., Svitek T. LightSail-1 Solar Sail Design and Qualification. Proceedings of the 41st Aerospace Mechanisms Symposium, Jet Propulsion Laboratory, May 16–18, 2012, pp. 451–463.
[5] Khabibullin R.M., Starinova O.L. Nonlinear Modeling and Study for Control of the Research Spacecraft with Solar Sail. AIP Conference Proceedings, 2017, vol. 1798, 9 p. DOI: 10.1063/1.4972666
[6] Khabibullin R.M., Starinova O.L. Izvestiya vysshikh uchebnykh zavedeniy. Mashinostroenie — Proceedings of Higher Educational Institutions. Маchine Building, 2019, no. 12 (717), pp. 94‒103.
[7] McInnes C. R. Solar sailing: technology, dynamics and mission applications. Springer Science & Business Media Publ., 2013, 296 p.
[8] Khabibullin R.M. Vestnik Samarskogo universiteta. Aerokosmicheskaya tekhnika, tekhnologii i mashinostroenie — VESTNIK of Samara University. Aerospace and Mechanical Engineering, 2019, vol. 19, no. 4, 10 p.
[9] Khabibullin R.M., Starinova O.L. Nelineynoe modelirovanie pereleta manevriruyushchego kosmicheskogo apparata k potentsialno-opasnomu asteroidu [Nonlinear simulation of the maneuvering spacecraft flight to a potentially dangerous asteroid]. "https://context.reverso.net/перевод/английский-русский/Certificate+of+state+registration" Certificate of state registration of computer program no. 2016663956, application no. 2016661879, date of receipt October 10, 2016, date of state registration in the Unified register computer program of Russian Federation in the information and telecommunication network Internet, publ. 10.01.2017, 1 p.
[10] Official website of Jet Propulsion Laboratory NASA. JPL Small-Body Database Browser. Available at: https://ssd.jpl.nasa.gov (accessed September 27, 2018).