DocumentCode
696294
Title
Obstacle avoidance of non-holonomic unicycle robots based on fluid mechanical modeling
Author
Soukieh, Rabie ; Shames, Iman ; Fidan, Baris
Author_Institution
Australian Nat. Univ., Canberra, ACT, Australia
fYear
2009
fDate
23-26 Aug. 2009
Firstpage
3269
Lastpage
3274
Abstract
This paper is concerned with obstacle avoidance of robots moving on a plane, based on a fluid mechanical principle known as the Circle Theorem. Considering the motion region as a fictitious fluid environment surrounding the obstacles, fluid streamlines are calculated which correspond to unique smooth paths that a mobile robot can follow without colliding with the obstacles. The design and analysis are initially performed assuming simple integrator dynamics for the agent, and later extended for more realistic non-holonomic unicycle dynamic agent models, with the help of proportional integral (PI) control and backstepping principles. Both point and non-point (ellipse) geometric models are considered for the agents in design and analysis. The fluid dynamics based designs developed for obstacle avoiding motion control of agents with non-holonomic unicycle dynamics are novel, and successfully tested via an extensive set of simulations. Application of the developed designs for motion control of unmanned aerial vehicles (UAVs) under the constraint of constant speed is also presented.
Keywords
PI control; autonomous aerial vehicles; collision avoidance; control nonlinearities; control system analysis; control system synthesis; mobile robots; motion control; robot dynamics; PI control; UAV; backstepping principles; circle theorem; fictitious fluid environment; fluid dynamic based designs; fluid mechanical principle; fluid streamlines; integrator dynamics; mobile robot; nonholonomic unicycle dynamic agent models; nonholonomic unicycle robots; nonpoint geometric models; obstacle avoidance; obstacle avoiding motion control; point geometric models; proportional integral control; unmanned aerial vehicles; Aerodynamics; Collision avoidance; Robots; Trajectory; Vehicle dynamics;
fLanguage
English
Publisher
ieee
Conference_Titel
Control Conference (ECC), 2009 European
Conference_Location
Budapest
Print_ISBN
978-3-9524173-9-3
Type
conf
Filename
7074909
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