Position Output Adaptive Backstepping Control of Electro-Hydraulic Servo Closed-Pump Control System
Abstract
:1. Introduction
2. Operating Principle of Pump Control System
3. Mathematical Model
3.1. Servo Motor
3.2. Fixed Displacement Pump
3.3. Double-Acting Symmetrical Hydraulic Cylinder
4. Controller Design
5. Experimental Results and Analysis
5.1. Experimental Platform
5.2. Experimental Analysis
5.2.1. 10 mm “S” Ramp Signal
5.2.2. Sine Signal
6. Conclusions
- (1)
- The mathematical model of the electro-hydraulic servo pump control system was established, and the position output transfer function of the system was deduced.
- (2)
- An adaptive backstepping control strategy was proposed on the basis of the backstepping method. The algorithm fully considers the nonlinearity and parameter uncertainty of the pump control system. When the desired control input is obtained, the adaptive adjustment rate of the uncertain parameter is derived and applied to actual position control.
- (3)
- Experimental analysis showed that the adaptive backstepping control strategy proposed in this paper had good control performance in practical applications. Its steady-state control accuracy was able to reach ±0.02 mm, which can lay a certain foundation for high-precision position control of the pump control system. In addition, the system dead zone characteristics are also the main factors affecting the steady-state control. In order for the control accuracy of the system to be further improved, the pump control system dead zone characteristics can be further studied.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
DBS | direct backstepping controller |
PID | proportional integral derivative controller |
EPU | electro-hydraulic servo pump control unit |
ABC | adaptive backstepping control algorithm |
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Parameter | Symbol | Units | Value |
---|---|---|---|
Total compression volume | 4.15 × 10−2 | ||
Efficient working area cylinder | 7.9 × 10−4 | ||
Total mass converted from the load to the piston | 150 | ||
Viscous damping coefficient | 0.0345 | ||
Equivalent spring stiffness of the load | 5 × 107 | ||
Total leakage coefficient of hydraulic system | 9 × 10−11 | ||
Effective volume modulus of oil | 7 × 108 | ||
Control gain | 300 | ||
Displacement of fixed displacement pump | 8 × 10−6 | ||
External disturbance and unmodeled friction | 1.5 × 104 |
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Chen, G.; Liu, H.; Jia, P.; Qiu, G.; Yu, H.; Yan, G.; Ai, C.; Zhang, J. Position Output Adaptive Backstepping Control of Electro-Hydraulic Servo Closed-Pump Control System. Processes 2021, 9, 2209. https://doi.org/10.3390/pr9122209
Chen G, Liu H, Jia P, Qiu G, Yu H, Yan G, Ai C, Zhang J. Position Output Adaptive Backstepping Control of Electro-Hydraulic Servo Closed-Pump Control System. Processes. 2021; 9(12):2209. https://doi.org/10.3390/pr9122209
Chicago/Turabian StyleChen, Gexin, Huilong Liu, Pengshuo Jia, Gengting Qiu, Haohui Yu, Guishan Yan, Chao Ai, and Jin Zhang. 2021. "Position Output Adaptive Backstepping Control of Electro-Hydraulic Servo Closed-Pump Control System" Processes 9, no. 12: 2209. https://doi.org/10.3390/pr9122209
APA StyleChen, G., Liu, H., Jia, P., Qiu, G., Yu, H., Yan, G., Ai, C., & Zhang, J. (2021). Position Output Adaptive Backstepping Control of Electro-Hydraulic Servo Closed-Pump Control System. Processes, 9(12), 2209. https://doi.org/10.3390/pr9122209