DocumentCode
937278
Title
Investigation of Sliding-Surface Design on the Performance of Sliding Mode Controller in Antilock Braking Systems
Author
Shim, Taehyun ; Chang, Sehyun ; Lee, Seok
Author_Institution
Dept. of Mech. Eng., Univ. of Michigan, Dearborn, MI
Volume
57
Issue
2
fYear
2008
fDate
3/1/2008 12:00:00 AM
Firstpage
747
Lastpage
759
Abstract
Sliding mode control (SMC) has widely been employed in the development of a wheel-slip controller because of its effectiveness in applications for nonlinear systems as well as its performance robustness on parametric and modeling uncertainties. The design of a sliding surface strongly influences the overall behavior of the SMC system due to the discontinuous switching of control force in the vicinity of a sliding surface that produces chattering. This paper investigates the effects of sliding-surface design on the performance of an SMC-based antilock braking system (ABS), including a brake-torque limitation, an actuator time delay, and a tire-force buildup. Different sliding-surface designs commonly used in ABS were compared, and an alternative sliding-surface design that improves convergence speed and oscillation damping around the target slip has been proposed. An 8-degree-of-freedom (dof) nonlinear vehicle model was developed for this paper, and the effects of brake-system parameter variations, such as a brake actuator time constant, target slip ratios, an abrupt road friction change, and road friction noises, were also assessed.
Keywords
braking; control system synthesis; damping; nonlinear control systems; oscillations; road vehicles; robust control; uncertain systems; variable structure systems; actuator time delay; antilock braking systems; brake-torque limitation; nonlinear vehicle model; oscillation damping; parametric uncertainties; robust control; sliding mode controller; sliding-surface design; tire-force buildup; wheel-slip controller; ABS; Antilock braking system (ABS); Sliding Mode Control; Sliding Surface Design; sliding mode control (SMC); sliding-surface design;
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/TVT.2007.905391
Filename
4357200
Link To Document