Design and Verification of Two-Stage Brake Pressure Servo Valve for Aircraft Brake System
Abstract
:1. Introduction
- (1)
- A novel structure of two-stage pressure servo valve is proposed in this paper. By setting feedback channels, the degenerative feedback effect on the displacement of the main valve core is realized, which can stabilize the output pressure and effectively restrain the vibration during the process of braking.
- (2)
- According to the principle of the TSBPSV designed in this paper, a matching mathematical model is established, the effect of vibration suppression of the valve is simulated and analyzed, and an experimental platform is built to verify the simulation results.
2. Introduction of TSBPSV and Test System Principle
2.1. Structure Principle of TSBPSV
2.2. Introduction to the Principle of TSBPSV Test System
3. Modeling of TSPBSV and Test System
3.1. Mathematical Modeling of Torque Motor
3.2. Power Level Valve Core Mathematical Model
3.3. Mathematical Modeling of Load Actuator
3.4. Mathematical Modeling of Oil Return Channel
4. Simulation Analysis of Brake Pressure Servo Valve
5. Experimental Verification of TSBPSV
5.1. Test Platform for Load Simulation Performance of Brake Pressure Servo Valve-Controlled Cylinder System
5.2. Test Experiment of TSBPSV
5.3. Comparative Experiment of the TSBPSV and Prototypical Brake Pressure Servo Valve
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
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0.9 Nm/A | 5.5 × 10−7 kg·m2 | 0.005 Nm/rad/s | 21.5 Nm/rad | 13.1 Nm/rad | 0.02 N/m | 6 × 10−13 N/m |
1.93 × 10−5 m2 | 1.25 × 10−5 m2 | 0.0124 N/m | 8.5 × 10−4 N/m | 13.1 N/s | 50 N/s2 | 1 × 106 N/m |
6.15 × 10−4 m2 | 2.38 × 10−13 | 1.7 × 109 | 0 | 2 × 10−4 m3 | 1.9−4 m3 | 0.06N/m |
Experimental Scheme | Signal Type | Change Time | Amplitude | Number |
---|---|---|---|---|
1 | Step signal | 0.2s | 40mA | 6 |
2 | Slope signal | 1.5s | 40mA | 6 |
Oil Supply Pressure | System Flow | Brake Pipe | Return Pipe | Back Pressure | Load Stiffness | Load Damping |
---|---|---|---|---|---|---|
15 MPa | 6.25 × 10−4 m3/s | φ0.006 × 1.50 m | φ0.006 × 1.01 m | 0.6 MPa | 1,000,000 N/m | 50 N·s/m |
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Zhang, L.; Huang, Z.; Fu, C.; Xu, Y.; Wang, Y.; Kong, X. Design and Verification of Two-Stage Brake Pressure Servo Valve for Aircraft Brake System. Processes 2021, 9, 979. https://doi.org/10.3390/pr9060979
Zhang L, Huang Z, Fu C, Xu Y, Wang Y, Kong X. Design and Verification of Two-Stage Brake Pressure Servo Valve for Aircraft Brake System. Processes. 2021; 9(6):979. https://doi.org/10.3390/pr9060979
Chicago/Turabian StyleZhang, Lilei, Zhipeng Huang, Chengwei Fu, Yuepeng Xu, Yunhe Wang, and Xiangdong Kong. 2021. "Design and Verification of Two-Stage Brake Pressure Servo Valve for Aircraft Brake System" Processes 9, no. 6: 979. https://doi.org/10.3390/pr9060979
APA StyleZhang, L., Huang, Z., Fu, C., Xu, Y., Wang, Y., & Kong, X. (2021). Design and Verification of Two-Stage Brake Pressure Servo Valve for Aircraft Brake System. Processes, 9(6), 979. https://doi.org/10.3390/pr9060979