English

Impulsive Relative Motion Control with Continuous-Time Constraint Satisfaction for Cislunar Space Missions

Systems and Control 2025-04-09 v2 Systems and Control

Abstract

Recent investments in cislunar applications open new frontiers for space missions within highly nonlinear dynamical regimes. In this paper, we propose a method based on Sequential Convex Programming (SCP) to loiter around a given target with impulsive actuation while satisfying path constraints continuously over the finite time-horizon, i.e., independently of the number of nodes in which domain is discretized. Location, timing, magnitude, and direction of a fixed number of impulses are optimized in a model predictive framework, exploiting the exact nonlinear dynamics of non-stationary orbital regimes. The proposed approach is first validated on a relative orbiting problem with respect to a selenocentric near rectilinear halo orbit. The approach is then compared to a formulation with path constraints imposed only at nodes and with mesh refined to ensure complete satisfaction of path constraints over the continuous-time horizon. CPU time per iteration of 400 ms for the refined-mesh approach reduce to 5.5 ms for the proposed approach.

Keywords

Cite

@article{arxiv.2502.00215,
  title  = {Impulsive Relative Motion Control with Continuous-Time Constraint Satisfaction for Cislunar Space Missions},
  author = {Fabio Spada and Purnanand Elango and Behçet Açıkmeşe},
  journal= {arXiv preprint arXiv:2502.00215},
  year   = {2025}
}
R2 v1 2026-06-28T21:28:39.104Z