Low-Thrust Lunar Capture Leveraging Nonlinear Orbit Control
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Published:2023-08-16
Issue:5
Volume:70
Page:
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ISSN:2195-0571
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Container-title:The Journal of the Astronautical Sciences
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language:en
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Short-container-title:J Astronaut Sci
Author:
Pontani MauroORCID, Pustorino Marco
Abstract
AbstractNonlinear orbit control with the use of low-thrust propulsion is proposed as an effective strategy for autonomous guidance of a space vehicle directed toward the Moon. Orbital motion is described in an ephemeris model, with the inclusion of the most relevant perturbations. Unfavorable initial conditions, associated with weak, temporary lunar capture, are considered, as representative conditions that may be encountered in real mission scenarios. These may occur when the spacecraft is released in nonnominal flight conditions, which would naturally lead it to impact the Moon or escape the lunar gravitational attraction. To avoid this, low-thrust propulsion, in conjunction with nonlinear orbit control, is employed, to drive the space vehicle toward two different, prescribed, low-altitude lunar orbits. Nonlinear orbit control leads to identifying a saturated feedback law (for the low-thrust magnitude and direction) that is proven to enjoy global stability properties. The guidance strategy at hand is successfully tested on three different mission scenarios. Then, the capture region is identified, and includes a large set of initial conditions for which nonlinear orbit control with low-thrust propulsion is effective to achieve lunar capture and final orbit acquisition. For the purpose of achieving lunar capture, low-thrust propulsion is shown to be more effective if ignited at aposelenium.
Funder
Università degli Studi di Roma La Sapienza
Publisher
Springer Science and Business Media LLC
Subject
Space and Planetary Science,Aerospace Engineering
Reference29 articles.
1. Rathsman, P., Kugelberg, J., Bodin, P., Racca, G.D., Foing, B., Stagnaro, L.: SMART-1: development and lessons learnt. Acta Astronaut. 57(2–8), 455–468 (2005) 2. Uesugi, K., Matuso, H., Kawaguchi, J., Hayashi, T.: Japanese first double lunar swingby mission “Hiten”. Acta Astronaut. 25(7), 347–355 (1991) 3. Lo, M.W., Williams, B.G., Bollman, W.E., Han, D.S., Hahn, Y.S., Bell, J.L., Hirst, E., Corwin, R., Hong, R., Howell, K., Barden, B., Wilson, R.: Genesis mission design. J. Astronaut. Sci. 49(1), 169–184 (2011) 4. Folta, D.C., Woodard, M., Howell, K., Patterson, C., Schlei, W.: Applications of multi-body dynamical environments: the ARTEMIS transfer trajectory design. Acta Astronaut. 73, 237–249 (2012) 5. Roncoli R.B., Fujii K.K.: Mission design overview for the gravity recovery and interior laboratory GRAIL) mission. In: AIAA/AAS Astrodynamics Specialist Conference, Toronto, Canada, 2010. Paper AAS 2010–8383
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