Title :
Nonlinear H-infinity control of relative motion in space via the state-dependent Riccati equations
Author :
Giovanni Franzini;Mario Innocenti
Author_Institution :
Department of Information Engineering, University of Pisa, Via G. Caruso 16, 56122, Italy
Abstract :
Relative guidance algorithms for space applications were identified by several space agencies as an enabling technology for future missions development. Whenever two or more space vehicles must coordinate their motion, or a terminal rendezvous has to be performed, a robust control of the relative motion occurring between the objects is necessary. Control must guarantee operation safety, and minimize fuel consumption, since refueling operations are currently too expensive. In this context, the paper proposes an extended linearization technique to design a nonlinear H-infinity controller for the relative motion. The developed controller is designed to minimize propellant consumption and to attenuate disturbances due to typical perturbations of low Earth orbits, such as atmospheric drag and J2 perturbation. Terminal rendezvous and formation control simulations were performed using data from realistic missions.
Keywords :
"Atmospheric modeling","Space vehicles","Terrestrial atmosphere","Acceleration","Low earth orbit satellites","Earth"
Conference_Titel :
Decision and Control (CDC), 2015 IEEE 54th Annual Conference on
DOI :
10.1109/CDC.2015.7402733