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Autonomous station keeping of satellites in areostationary Mars orbit: A predictive control approach

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Abstract

The continued exploration of Mars will require a greater number of in-space assets to aid interplanetary communications. Future missions to the surface of Mars may be augmented with stationary satellites that remain overhead at all times as a means of sending data back to Earth from fixed antennae on the surface. These areostationary satellites will experience several important disturbances that push and pull the spacecraft off of its desired orbit. Thus, a station-keeping control strategy must be put into place to ensure the satellite remains overhead while minimizing the fuel required to elongate mission lifetime. This paper develops a model predictive control policy for areostationary station keeping that exploits knowledge of non-Keplerian perturbations in order to minimize the required annual station-keeping Δv. The station-keeping policy is applied to a satellite placed at various longitudes, and simulations are performed for an example mission at a longitude of a potential future crewed landing site. Through careful tuning of the controller constraints, and proper placement of the satellite at stable longitudes, the annual station-keeping Δv can be reduced relative to a naïve mission design.

Original languageEnglish (US)
Pages (from-to)1-15
Number of pages15
JournalActa Astronautica
Volume230
DOIs
StatePublished - May 2025

Bibliographical note

Publisher Copyright:
© 2025 IAA

Keywords

  • Areostationary Mars orbit
  • Predictive control
  • Space vehicles
  • Station keeping
  • Stationary satellite mission design

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