Master cylinder pressure reduction logic for cooperative work between electro-hydraulic brake system and anti-lock braking system based on speed servo system

Author:

Xiong Lu12,Han Wei12ORCID,Yu Zhuoping12,Lin Jian3,Xu Songyun3

Affiliation:

1. School of Automotive Studies, Tongji University, Shanghai, China

2. Clean Energy Automotive Engineering Center, Tongji University, Shanghai, China

3. DIAS Automotive Electronic Systems Co. Ltd, Shanghai, China

Abstract

As one feasible solution of brake-by-wire systems, electro-hydraulic brake system has been made available into production recently. Electro-hydraulic brake system must work cooperatively with the hydraulic control unit of anti-lock braking system. Due to the mechanical configuration involving electric motor + reduction gear, the electro-hydraulic brake system could be stiffer in contrast to a conventional vacuum booster. That is to say, higher pressure peaks and pressure oscillation could occur during an active anti-lock braking system control. Actually, however, electro-hydraulic brake system and anti-lock braking system are produced by different suppliers considering brake systems already in production. Limited signals and operations of anti-lock braking system could be provided to the supplier of electro-hydraulic brake system. In this work, a master cylinder pressure reduction logic is designed based on speed servo system for active pressure modulation of electro-hydraulic brake system under the anti-lock braking system–triggered situation. The pressure reduction logic comprises of model-based friction compensation, feedforward and double closed-loop feedback control. The pressure closed-loop is designed as the outer loop, and the motor rotation speed closed-loop is drawn into the inner loop of feedback control. The effectiveness of the proposed controller is validated by vehicle experiment in typical braking situations. The results show that the controller remains stable against parameter uncertainties in extreme condition such as low temperature and mismatch of friction model. In contrast to the previous methods, the comparison results display the improved dynamic cooperative performance of electro-hydraulic brake system and anti-lock braking system and robustness.

Funder

National Key R&D Program of China

Program of Shanghai Automotive Industry Science and Technology Development Foundation

Program of Science and Technology Commission Foundation of Shanghai

Publisher

SAGE Publications

Subject

Mechanical Engineering,Aerospace Engineering

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1. Prescribed performance control guaranteeing anti-lock braking for nonlinear uncertain electro-booster;International Journal of Non-Linear Mechanics;2024-12

2. State estimation of a novel brake-by-wire system based on cascade observer;Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering;2024-02-22

3. Human–Machine Redundant Braking System for Aftermarket Low-Speed Electric Vehicle: Design and Validation;Processes;2023-07-21

4. Precise Control for Uncertain EBooster with Input Restrictions;2023 International Conference on Advanced Robotics and Mechatronics (ICARM);2023-07-08

5. Constraint performance slip ratio control for vehicles with distributed electrohydraulic brake-by-wire system;Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering;2023-03-04

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