DocumentCode
2255947
Title
Underwater glider motion control
Author
Mahmoudian, Nina ; Woolsey, Craig
Author_Institution
Dept. of Aerosp. & Ocean Eng., Virginia Tech., Blacksburg, VA, USA
fYear
2008
fDate
9-11 Dec. 2008
Firstpage
552
Lastpage
557
Abstract
This paper describes an underwater glider motion control system intended to enhance locomotive efficiency by reducing the energy expended by vehicle guidance. In previous work, the authors derived an approximate analytical expression for steady turning motion by applying regular perturbation theory to a realistic vehicle model. The analysis results suggested the use of a well-known time-optimal path planning procedure developed for the Dubins car, an often-used model of a wheeled mobile robot. For underwater gliders operating at their most efficient flight condition, time-optimal glide paths correspond to energy-optimal glide paths. Thus, an analytically informed strategy for energy-efficient locomotion is to generate sequences of steady wings-level and turning motions according to the Dubins path planning procedure. Because the turning motion results are only approximate, however, and to compensate for model and environmental uncertainty, one must incorporate feedback to ensure convergent path following. This paper describes the dynamic modelling of the complete multi-body control system and the development and numerical implementation of a motion control system. The control system can be combined with a higher level guidance strategy involving Dubins-like paths to achieve energy-efficient locomotion.
Keywords
mobile robots; motion control; multivariable control systems; optimal control; path planning; remotely operated vehicles; underwater vehicles; multibody control system; regular perturbation theory; steady turning motion; time-optimal glide paths; time-optimal path planning procedure; underwater glider motion control; vehicle guidance; wheeled mobile robot; winged autonomous underwater vehicles; Energy efficiency; Feedback; Mobile robots; Motion analysis; Motion control; Navigation; Path planning; Turning; Uncertainty; Underwater vehicles;
fLanguage
English
Publisher
ieee
Conference_Titel
Decision and Control, 2008. CDC 2008. 47th IEEE Conference on
Conference_Location
Cancun
ISSN
0191-2216
Print_ISBN
978-1-4244-3123-6
Electronic_ISBN
0191-2216
Type
conf
DOI
10.1109/CDC.2008.4739432
Filename
4739432
Link To Document