DocumentCode
106310
Title
Modeling, Control, and Experimental Validation of a High-Speed Supercavitating Vehicle
Author
Sanabria, David Escobar ; Balas, Gary ; Arndt, Roger
Author_Institution
Dept. of Aerosp. Eng. & Mech., Univ. of Minnesota, Minneapolis, MN, USA
Volume
40
Issue
2
fYear
2015
fDate
Apr-15
Firstpage
362
Lastpage
373
Abstract
Underwater vehicles that travel inside a bubble or supercavity offer possibilities for high-speed and energy-efficient transportation of cargo and personnel. Validation and testing of mathematical models and control systems for these vehicles is a challenge due to the cost and complexity of experimental facilities and testing procedures. A cost-efficient and low-complexity approach to the experimental validation of mathematical models and control systems for a supercavitating test vehicle is presented in this paper. The proposed method enables the testing of control algorithms subject to steady and unsteady flows in a high-speed water tunnel. The method combines a real-time simulation of the vehicle dynamics, force measurements from an experimental scale vehicle, and flight control computer to reproduce the vehicle motion subject to realistic flow conditions and hardware constraints as actuator saturation and time delay. The model of the vehicle dynamics, used for the validation infrastructure and control design, is derived using experimental data. A controller designed to track pitch angle reference commands was tested on the experimental platform. The test cases validated the operation of the vehicle and controller subject to steady and unsteady flows.
Keywords
channel flow; delays; flow instability; underwater vehicles; vehicle dynamics; actuator saturation; control design; control systems; flight control computer; force measurements; hardware constraints; high-speed supercavitating vehicle; high-speed water tunnel; mathematical models; pitch angle reference command tracking; realistic flow conditions; supercavitating test vehicle; time delay; unsteady flows; validation infrastructure; vehicle dynamics; vehicle motion; Control systems; Drag; Force; Mathematical model; Testing; Vehicle dynamics; Vehicles; Controller validation; high-speed underwater vehicles; hybrid simulation; supercavitation;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.2014.2312591
Filename
6810202
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