DocumentCode
23968
Title
Model Predictive Control for Spacecraft Rendezvous and Docking: Strategies for Handling Constraints and Case Studies
Author
Weiss, Avishai ; Baldwin, Morgan ; Erwin, Richard Scott ; Kolmanovsky, Ilya
Author_Institution
Dept. of Aerosp. Eng., Univ. of Michigan, Ann Arbor, MI, USA
Volume
23
Issue
4
fYear
2015
fDate
Jul-15
Firstpage
1638
Lastpage
1647
Abstract
This paper presents a strategy and case studies of spacecraft relative motion guidance and control based on the application of linear quadratic model predictive control (MPC) with dynamically reconfigurable constraints. The controller is designed to transition between the MPC guidance during a spacecraft rendezvous phase and MPC guidance during a spacecraft docking phase, with each phase having distinct requirements, constraints, and sampling rates. Obstacle avoidance is considered in the rendezvous phase, while a line-of-sight cone constraint, bandwidth constraints on the spacecraft attitude control system, and exhaust plume direction constraints are addressed during the docking phase. The MPC controller is demonstrated in simulation studies using a nonlinear model of spacecraft orbital motion. The implementation uses estimates of spacecraft states derived from relative angle and range measurements, and is robust to estimator dynamics and measurement noise.
Keywords
attitude control; control system synthesis; linear quadratic control; motion control; predictive control; space vehicles; state estimation; MPC controller; bandwidth constraints; constraint handling; controller design; dynamically reconfigurable constraints; estimator dynamics; exhaust plume direction constraints; line-of-sight cone constraint; linear quadratic model predictive control; measurement noise; model predictive control; nonlinear model; spacecraft attitude control system; spacecraft control; spacecraft docking phase; spacecraft orbital motion; spacecraft relative motion guidance; spacecraft rendezvous phase; spacecraft state estimation; Attitude control; Collision avoidance; Orbits; Robustness; Space vehicles; Vectors; Constraints; model predictive control; obstacle avoidance; rendezvous and docking; spacecraft control; spacecraft control.;
fLanguage
English
Journal_Title
Control Systems Technology, IEEE Transactions on
Publisher
ieee
ISSN
1063-6536
Type
jour
DOI
10.1109/TCST.2014.2379639
Filename
7012053
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