In this paper, the trajectory planning problem for autonomous rendezvous and docking between a controlled spacecraft and a tumbling target is addressed. The use of a variable planning horizon is proposed in order to construct an appropriate maneuver plan, within an optimization-based framework. The involved optimization problem is nonconvex and features nonlinear constraints. The main contribution is to show that such problem can be tackled effectively by solving a finite number of linear programs. To this aim, a specifically conceived horizon search algorithm is employed in combination with a polytopic constraint approximation technique. The resulting guidance scheme provides the ability to identify favourable docking configurations, by exploiting the time-varying nature of the optimization problem endpoint. Simulation results involving the capture of the nonoperational EnviSat spacecraft indicate that the method is able to generate optimal trajectories at a fraction of the computational cost incurred by a state-of-the-art nonlinear solver.
@article{arxiv.2107.07254,
title = {Variable-Horizon Guidance for Autonomous Rendezvous and Docking to a Tumbling Target},
author = {Mirko Leomanni and Renato Quartullo and Gianni Bianchini and Andrea Garulli and Antonio Giannitrapani},
journal= {arXiv preprint arXiv:2107.07254},
year = {2024}
}
Comments
A video of the rendezvous and docking maneuver can be found at https://cloud.control.diism.unisi.it/index.php/s/JyRSgDDowkbGziT