DocumentCode :
51919
Title :
Vehicle Motion in Currents
Author :
Thomasson, P.G. ; Woolsey, Craig A.
Author_Institution :
Coll. of Aeronaut., Cranfield Univ., Comwall, UK
Volume :
38
Issue :
2
fYear :
2013
fDate :
Apr-13
Firstpage :
226
Lastpage :
242
Abstract :
In this paper, we present a nonlinear dynamic model for the motion of a rigid vehicle in a dense fluid flow that comprises a steady, nonuniform component and an unsteady, uniform component. In developing the basic equations, the nonuniform flow is assumed to be inviscid, but containing initial vorticity; further rotational flow effects may then be incorporated by modifying the angular rate used in the viscous force and moment model. The equations capture important flow-related forces and moments that are absent in simpler models. The dynamic equations are presented in terms of both the vehicle´s inertial motion and its flow-relative motion. Model predictions are compared with exact analytical solutions for simple flows. Applications of the motion model include controller and observer design, stability analysis, and simulation of nonlinear vehicle dynamics in nonuniform flows. As illustrations, we use the model to analyze the motion of a cylinder in a plane laminar jet, a spherical Lagrangian drifter, and a slender underwater vehicle. For this last example, we compare predictions of the given model with those of simpler models and we demonstrate its use for flow gradient estimation. The results are applicable to not only underwater vehicles, but also to air vehicles of low relative density such as airships and ultralights.
Keywords :
flow instability; nonlinear dynamical systems; rotational flow; vehicle dynamics; air vehicles; airships; angular rate; controller; currents; cylinder motion; dense fluid flow; dynamic equations; exact analytical solutions; flow gradient estimation; flow-related forces; flow-relative motion; initial vorticity; moment model; nonlinear dynamic model; nonlinear vehicle dynamics simulation; nonuniform flow; plane laminar jet; relative density; rotational flow; spherical Lagrangian drifter; stability analysis; steady nonuniform component; ultralights; underwater vehicle; unsteady uniform component; vehicle motion; viscous force; Atmospheric modeling; Dynamics; Equations; Kinematics; Mathematical model; Vehicle dynamics; Vehicles; Fluid flow; nonlinear systems; vehicle dynamics;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2013.2238054
Filename :
6459548
Link To Document :
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