An adaptive finite-time control method for antilock braking system with experimental analysis

Author:

He Youguo1ORCID,Zhou Yu1,Liu Xin1,Cai Yingfeng1,Yuan Chaochun1,Tian Liwei2

Affiliation:

1. Automotive Engineering Research Institute, Jiangsu University, Zhenjiang, China

2. Information Engineering College of Shenyang University, Shenyang, China

Abstract

The antilock braking system (ABS) is a representative technology to improve the safety of hard braking in automobiles. The slip rate control has been a challenging issue due to the complicated characteristics of tires and the strong nonlinearity of the system. In this paper, a novel adaptive finite-time controller for ABS is developed to improve braking performance. Different from the current control strategies for ABS, the extended finite-time stability theory and state constraint are comprehensively considered in the proposed control strategy. The extended finite-time stability theory is applied to deal with the system uncertainties, by which the convergence of slip rate tracking error is achieved. And the asymmetric tan-type barrier Lyapunov function (BLF) is used to ensure that the wheel slip ratio is within a smaller and more stable area. Finally, according to the simulation and experiment, compared with the existing BLF controller, a faster convergence rate, better robustness and anti-disturbance performance of ABS can be achieved with the proposed strategy.

Funder

National Natural Science Foundation of China

Jiangsu Province road transport application Key Laboratory Fund

Six Talent Peaks Project of Jiangsu Province

Research start fund of Jiangsu University

Publisher

SAGE Publications

Subject

Mechanical Engineering,Aerospace Engineering

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