Research on Design and Control Strategy of Novel Independent Metering System
Abstract
:1. Introduction
1.1. System Design
1.2. Control Strategy
- (1)
- The disadvantages of the independent metering composed of the traditional cartridge proportional valve were investigated. Moreover, a scheme of the independent metering valve was proposed based on pilot hydraulic control, and its working principle was explained. Combined with the design requirements of pressure and flow, the two-valve spool structure and valve body size were designed, the main valve spool simulation model was built, and the parameters affecting the dynamic response characteristics of the main spool were investigated and then optimized.
- (2)
- The simulation model of the independent metering system based on pilot hydraulic control and the traditional valve control system was built, and the two-chamber pressure of the hydraulic actuator and pump source power variation characteristics under constant load conditions were investigated to prove the feasibility and energy-saving of the proposed scheme. A control strategy was proposed following the load force direction prediction and two-chamber pressure switching, which was applied to the independent metering system following pilot hydraulic control. The effectiveness and reliability of the proposed control strategy were verified through simulation.
2. Introduction of New Independent Metering System
2.1. The Principle of New Control Valve
2.2. Design of Control Valve
2.3. New Control Strategy
3. Simulation Research
3.1. The Influence of Key Parameters on the Dynamic Characteristics of the Main Valve
- (1)
- Damping of main spool pressure chamber
- (2)
- Pilot pressure chamber diameter
3.2. Analysis of Independent Metering System Based on Pilot Hydraulic Control
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Number | Variable | Value | Number | Variable | Value |
---|---|---|---|---|---|
1 | total length of valve spool | 71.5 mm | 6 | stem diameter | 9 mm |
2 | spool displacement | 3.5 mm | 7 | pressure-equalizing groove | 0.2 mm × 0.5 mm |
3 | throttling groove shape | V | 8 | sinking slot diameter | 18 mm |
4 | negative coverage | 0.5 mm | 9 | width of sinking slot | 10 mm |
5 | valve spool outer diameter | 12 mm | 10 | oil channel diameter | 8 mm |
Variable | Parameter | Variable | Parameter |
---|---|---|---|
cylinder piston diameter D (mm) | 40 | leakage flow (L/min/MPa) | 0.02 |
cylinder piston rod diameter d (mm) | 25 | damping coefficient (N/m/s) | 120 |
hydraulic cylinder stroke L (mm) | 1200 | cylinder dead zone (cm3) | 50 |
Ls pump displacement (mL/r) | 100 | Ls valve setting pressure (MPa) | 2 |
cut-off valve pressure (MPa) | 28 | motor speed (r/min) | 1500 |
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Yang, J.; Li, J.; Zhong, Y.; Gao, Y.; Guo, R.; Zhao, J. Research on Design and Control Strategy of Novel Independent Metering System. Sustainability 2023, 15, 13359. https://doi.org/10.3390/su151813359
Yang J, Li J, Zhong Y, Gao Y, Guo R, Zhao J. Research on Design and Control Strategy of Novel Independent Metering System. Sustainability. 2023; 15(18):13359. https://doi.org/10.3390/su151813359
Chicago/Turabian StyleYang, Jing, Jiadong Li, Yuhang Zhong, Yingjie Gao, Rui Guo, and Jingyi Zhao. 2023. "Research on Design and Control Strategy of Novel Independent Metering System" Sustainability 15, no. 18: 13359. https://doi.org/10.3390/su151813359
APA StyleYang, J., Li, J., Zhong, Y., Gao, Y., Guo, R., & Zhao, J. (2023). Research on Design and Control Strategy of Novel Independent Metering System. Sustainability, 15(18), 13359. https://doi.org/10.3390/su151813359