Leakage Characteristics of Proportional Directional Valve
Abstract
:1. Introduction
2. Experimental and Analytical Methods
2.1. General Valve Analysis
2.2. Experimental Test Stand
2.3. Numerical Simulation
3. Results and Discussion
3.1. Experimental Measurements
3.1.1. Blocked-Line Pressure Sensitivity Curve
3.1.2. Leakage Flow Curve
3.1.3. Center Flow Curve
3.2. Numerical Simulation
4. Conclusions
- (1)
- Measurements shows that the pressure sensitivity curve changes significantly for different supply pressures. For different oil viscosities, the pressure sensitivity curve changes only minimally. The magnitude of the leakage flow changes over the entire range of the spool stroke depending on the supply pressure and oil viscosity. The magnitude of the center flow is also significantly affected by the oil viscosity.
- (2)
- From comparison, the experimentally measured dependence of the center flow curve nearly matches analytically determined dependences for null tolerance and overlap tolerance in the lower flow rate area. At higher center flow, the experimentally determined pressure drop at the spool is lower than in the case of the analytical calculation for the null tolerance and the overlap tolerance.
- (3)
- The overlap tolerance curve and the underlap tolerance curve, determined by numerical simulations, define the range of center flow that is affected by the maximum allowable manufacturing tolerance. The null tolerance curve, determined by numerical simulation, defines the center flow for the ideal zero spool lap geometry.
- (4)
- The experimentally determined center flow curve is within the specified range defined by the selected tolerance. The comparison of the numerical simulation and the experiment also shows that the slight overlap of control edges can be predicted for the measured valve.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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x < 0 | i = 1, 3 | i = 2, 4 | - |
x = 0 | - | - | i = 1, 2, 3, 4 |
x > 0 | i = 2, 4 | i = 1, 3 | - |
Sensors | Measuring Range | Measuring Accuracy |
---|---|---|
Pressure sensor S1 | (0–400) bar | ±0.25% of full scale |
Pressure sensor S2, S3 | (0–250) bar | ±0.25% of full scale |
Pressure sensor S4 | (0–60) bar | ±0.25% of full scale |
Flow meter S5 | (0.05–5) dm3·min−1 | up to ±0.4% of reading |
Temperature sensor S6 | (−50–200) °C | 0.3 + 0.005·tO °C |
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Ledvoň, M.; Hružík, L.; Bureček, A.; Dýrr, F.; Polášek, T. Leakage Characteristics of Proportional Directional Valve. Processes 2023, 11, 512. https://doi.org/10.3390/pr11020512
Ledvoň M, Hružík L, Bureček A, Dýrr F, Polášek T. Leakage Characteristics of Proportional Directional Valve. Processes. 2023; 11(2):512. https://doi.org/10.3390/pr11020512
Chicago/Turabian StyleLedvoň, Marian, Lumír Hružík, Adam Bureček, Filip Dýrr, and Tomáš Polášek. 2023. "Leakage Characteristics of Proportional Directional Valve" Processes 11, no. 2: 512. https://doi.org/10.3390/pr11020512
APA StyleLedvoň, M., Hružík, L., Bureček, A., Dýrr, F., & Polášek, T. (2023). Leakage Characteristics of Proportional Directional Valve. Processes, 11(2), 512. https://doi.org/10.3390/pr11020512