A Pressure-Coordinated Control for Vehicle Electro-Hydraulic Braking Systems
Abstract
:1. Introduction
2. Electro-Hydraulic Braking System Structure and Braking Force Control Strategy
2.1. Structure and Function Design of the Braking System
2.2. Braking Force Control Strategy of Pressure Coordinated Control System
2.3. Electro-Hydraulic Braking Pressure Coordinated Control Strategy
3. Hydraulic Braking System Design and Pressure Control
3.1. Structure Design of Braking System
3.2. Mathematical Model of High-Speed Switch Valve
3.3. Brake System Model
3.3.1. Establish the Vacuum Booster Mathematical Model
3.3.2. Establish the Dynamic Model of the Brake Master Cylinder
3.3.3. The Brake Fluid Dynamics Model
3.3.4. The Reflux Pump Model
3.3.5. Hydraulic Pipeline Model
3.3.6. Dynamic Model of Brake Wheel Cylinder Piston
3.4. Model of PID Controller
3.5. Simulation Model of the Braking System
3.6. Simulation and Analysis of Dynamic Characteristics of Braking System
4. Establishment of Simulation Model of Pressure Coordinated Control System Based on the Vehicle
4.1. Model of Control System
4.2. Establishment of Co-Simulation Model
5. Simulation and Analysis of Dynamic Characteristics of Braking System Based on the Vehicle
5.1. Simulation and Analysis under Variable Braking Strength
5.2. Simulation and Analysis under Constant Braking Strength
5.3. Simulation and Analysis under Conventional Braking
5.4. Simulation and Analysis of ABS
5.5. Analysis and Simulation of Integrated Braking for the System
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameter (Units) | Value |
---|---|
Vehicle mass (kg) | 1800 |
Rolling radius (m) | 0.36 |
Front motor rated/peak power (kW) | 14/28 |
Rear motor rated/peak power (kW) | 13.5/27 |
Battery capacity (Ah) | 38.43 |
Parameter (Units) | Value |
---|---|
Front/rear braking cylinder diameter (mm) | 38.34/60.12 |
Front/rear braking disc radius (mm) | 120/128 |
Master cylinder diameter (mm) | 22.2 |
Regulating valve pressure (MPa) | 11 |
Modulation frequency of high-speed switch valve (Hz) | 90 |
Pump displacement (mL/r) | 1 |
Pump-motor rotating speed (r/min) | 2500 |
Parameter | Value |
---|---|
Return spring stiffness | 1.6 N/mm |
Moving iron mass | 15 g |
Coil turns | 380 |
Coil resistance | 5 Ω |
Initial air gap | 0.3 mm |
Spool displacement | 0.22 mm |
Voltage | 12 V |
Spring preload force | 7 N |
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Yang, Y.; Li, G.; Zhang, Q. A Pressure-Coordinated Control for Vehicle Electro-Hydraulic Braking Systems. Energies 2018, 11, 2336. https://doi.org/10.3390/en11092336
Yang Y, Li G, Zhang Q. A Pressure-Coordinated Control for Vehicle Electro-Hydraulic Braking Systems. Energies. 2018; 11(9):2336. https://doi.org/10.3390/en11092336
Chicago/Turabian StyleYang, Yang, Guangzheng Li, and Quanrang Zhang. 2018. "A Pressure-Coordinated Control for Vehicle Electro-Hydraulic Braking Systems" Energies 11, no. 9: 2336. https://doi.org/10.3390/en11092336
APA StyleYang, Y., Li, G., & Zhang, Q. (2018). A Pressure-Coordinated Control for Vehicle Electro-Hydraulic Braking Systems. Energies, 11(9), 2336. https://doi.org/10.3390/en11092336