DocumentCode :
51994
Title :
Modeling and Velocity Control for a Novel Narrow Vehicle Based on Mobile Wheeled Inverted Pendulum
Author :
Jian Huang ; Feng Ding ; Fukuda, Toshio ; Matsuno, Toshiya
Author_Institution :
Dept. of Control Sci. & Eng., Huazhong Univ. of Sci. & Technol., Wuhan, China
Volume :
21
Issue :
5
fYear :
2013
fDate :
Sept. 2013
Firstpage :
1607
Lastpage :
1617
Abstract :
Traffic problems such as pollution and congestion are becoming more and more serious in urban areas. A potential solution to these problems is to develop narrow vehicles that occupy less space and have lower emissions. There has been increasing interest in underactuated mechanical systems, i.e., mobile wheeled inverted pendulum (MWIP) models, which are widely used in the field of autonomous robotics and intelligent narrow vehicles. A novel narrow vehicle based on an MWIP and a movable seat, called UW-Car, is investigated in this paper. The dynamic model of the underactuated vehicle system running on flat ground is derived by Lagrange´s equation of motion. Based on the dynamic model and terminal sliding mode control method, two terminal sliding mode controllers are designed to control velocity and braking of the UW-Car. The first one is used to control the forward speed to a desired value while keeping the body upright and the seat on some fixed position. The second one is a switching sliding mode controller, composed of three terminal sliding mode controllers that quickly brakes the system according to an optimal braking scheme. All the control algorithms are tested in both Matlab simulation and a UW-Car experiment. The simulation and experimental results demonstrate the efficiency of the model and controllers.
Keywords :
automated highways; braking; mobile robots; nonlinear systems; optimal control; pendulums; road traffic; variable structure systems; vehicle dynamics; velocity control; wheels; Lagrange equation of motion; MATLAB simulation; MWIP models; UW-Car experiment; autonomous robotics; intelligent narrow vehicles; mobile wheeled inverted pendulum models; optimal braking scheme; switching sliding mode controller; terminal sliding mode control method; terminal sliding mode controllers; traffic problems; underactuated mechanical systems; underactuated vehicle system dynamic model; velocity control; Equations; Mathematical model; Modeling; Vehicle dynamics; Vehicles; Velocity control; Wheels; Dynamic modeling; mobile wheeled inverted pendulum (MWIP); optimal braking; terminal sliding mode control; velocity control;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2012.2214439
Filename :
6324409
Link To Document :
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