Title :
Application of fuzzy control algorithms for electric vehicle antilock braking/traction control systems
Author :
Khatun, P. ; Bingham, C.M. ; Schofield, N. ; Mellor, P.H.
Author_Institution :
Dept.. of Electron. & Electr. Eng., Univ. of Sheffield, UK
Abstract :
The application of fuzzy-based control strategies has gained enormous recognition as an approach for the rapid development of effective controllers for nonlinear time-variant systems. This paper describes the preliminary research and implementation of a fuzzy logic based controller to control the wheel slip for electric vehicle antilock braking systems (ABSs). As the dynamics of the braking systems are highly nonlinear and time variant, fuzzy control offers potential as an important tool for development of robust traction control. Simulation studies are employed to derive an initial rule base that is then tested on an experimental test facility representing the dynamics of a braking system. The test facility is composed of an induction machine load operating in the generating region. It is shown that the torque-slip characteristics of an induction motor provides a convenient platform for simulating a variety of tire/road μ-σ driving conditions, negating the initial requirement for skid-pan trials when developing algorithms. The fuzzy membership functions were subsequently refined by analysis of the data acquired from the test facility while simulating operation at a high coefficient of friction. The robustness of the fuzzy-logic slip regulator is further tested by applying the resulting controller over a wide range of operating conditions. The results indicate that ABS/traction control may substantially improve longitudinal performance and offer significant potential for optimal control of driven wheels, especially under icy conditions where classical ABS/traction control schemes are constrained to operate very conservatively.
Keywords :
asynchronous machines; braking; controllers; electric vehicles; fuzzy control; optimal control; traction motors; ABS/traction control; antilock braking systems; antilock braking/traction control systems; driven wheels; electric vehicle; experimental test facility; fuzzy control algorithms; fuzzy logic based controller; fuzzy membership functions; fuzzy-logic slip regulator; high coefficient of friction; icy conditions; induction machine load; induction motor; longitudinal performance; nonlinear dynamics; nonlinear time-variant systems; operating conditions; optimal control; research; robust traction control; simulation; torque-slip characteristics; Control systems; Electric vehicles; Fuzzy control; Nonlinear control systems; Nonlinear dynamical systems; Optimal control; Robust control; Test facilities; Vehicle dynamics; Wheels;
Journal_Title :
Vehicular Technology, IEEE Transactions on
DOI :
10.1109/TVT.2003.815922