The Odyssey IV autonomous underwater vehicle (AUV) is the next generation of un- manned subsurface robots from the MIT Sea Grant AUV Laboratory. The Odyssey IV AUV has a novel propulsion system, which includes a pair of azimuthing thrusters for maneuvering in surge and heave. An analytical model was developed to describe the complex nonlinear vehicle dynamics, and experiments were performed to refine this model. The fluid dynamics of unsteady azimuthing marine propulsors are largely unstudied, especially for small vehicles like the Odyssey IV AUV. Experiments sug- gest that thrust developed by an azimuthing propulsor is dependent on the azimuth angle rate of change, and can substantially affect vehicle dynamics. A simple model capturing the effects of azimuthing on the thruster dynamics is developed, and is shown to improve behavior of the model. The use of azimuthing thrusters presents interesting problems and opportunities in maneuvering and control. Nonlinear model predictive control (MPC) is a technique that consists of the real-time optimization of a nonlinear dynamic system model, with the ability to handle constraints and nonlinearities. In this work, several variations of simulated and experimental MPC-based controllers are investigated. The primary challenge in applying nonlinear MPC to the Odyssey IV is solving the time intensive trajectory optimization problem online. Simulations suggest that MPC is able to capitalize on its knowledge of the system, allowing more aggressive trajectories than a traditional PID controller.
Dynamic Response and Maneuvering Strategies of a Hybrid Autonomous Underwater Vehicle in Hovering
2009
94 pages
Report
No indication
English
Marine Engineering , Fluid Mechanics , Robots , Dynamic response , Maneuverability , Fluid dynamics , Drones , Underwater vehicles , Nonlinear systems , Self operation , Hybrid systems , Knowledge based systems , Azimuth , Thrusters , Hovering , Propulsion systems , Real time , Skills , Strategy , Marine propulsion , Mathematical models , Linear systems , Autonomous underwater vehicles
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