Experimental Investigation on Contaminated Friction of Hydraulic Spool Valve
Abstract
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Abstract
1. Introduction
2. The Real-Time Experimental System of Contaminated Friction Measurement
2.1. The Experimental Model of Spool
2.2. The Oil of Suspended Solid Particulates
2.3. Experimental Principle
2.4. The Real-Time Experimental Test Bench for Measuring Contaminated Friction of Spool
- (1)
- Place the spools to the bottom of valve hole and injecting oil with particulates suspended of each size into the experimental model.
- (2)
- Start stepper motor and pull spools along the valve hole in a constant velocity.
- (3)
- The real-time traction force and oil pressure values are collected after the movement is stable.
- (4)
- The experimental data were substituted into Equations (2) and (4) for post-treatment. The real-time contaminated friction of spool with various morphologies in oil with particulates suspended of each size was obtained after processing.
2.5. Comprehensive Measuring Accuracy of the Experimental System
3. Contaminated Friction Experimental Analysis of the Spool with Standard Morphology
3.1. The Contaminated Friction Curve of the Spool
3.2. Stagnation-Sensitive Size
3.3. Contaminated Stagnation Model
4. The Experimental Analysis on Contaminated Friction of Spool with Different Morphologies
4.1. The Experimental Analysis on Contaminated Friction of the Rough Spool
4.2. The Experimental Analysis on Contaminated Friction of the Conical Spool
5. Conclusions
- (1)
- The contaminated friction of spool has the characteristics of pulsation.
- (2)
- The sensitive size range for stagnation of solid particulates is 0.7 to 0.9 times the size of clearance.
- (3)
- Compared with the standard morphology of spool, the contaminated friction of rough spool has the same trend with particulates size, but the contaminated friction increases within the sensitive size range.
- (4)
- Compared with the standard morphology of spool, the lower limit of sensitive size range in the conical spools decreases, and the contaminated friction of cis-conical spool shows an increasing trend, whereas the contaminated friction of inverted cone spool shows a trend of increasing first and then decreasing
Author Contributions
Funding
Conflicts of Interest
References
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Experiment Model | Structural Parameters | ||||||||
---|---|---|---|---|---|---|---|---|---|
D/mm | d1/mm | d2/mm | d3/mm | L1/mm | Ra1 | Ra2 | Ra3 | m/Kg | |
Standard morphology spool | / | 28.8 | 28.8 | 30 | 35 | / | 0.8 | 0.8 | 0.2983 |
Rough spool | / | 28.8 | 28.8 | 30 | 35 | / | 12.5 | 0.8 | 0.3027 |
Cis-conical spool | / | 28.7 | 28.9 | 30 | 35 | / | 0.8 | 0.8 | 0.3117 |
Inverted cone spool | / | 28.9 | 28.7 | 30 | 35 | / | 0.8 | 0.8 | 0.3117 |
Valve body | 30.01 | / | / | / | / | 0.8 | / | / | / |
Parameters | Values |
---|---|
Oil density/(g/cm3) | 0.879 |
Oil dynamic viscosity/(Pa·s) | 0.0364 |
Components | Type | Parameters |
---|---|---|
Stepper motor | 57BYG250H-8 | pulse frequency 600 Hz rotational speed 2.12 r/min |
Tension sensor | JZHL-T1 | range100N precision 0.5% |
Pressure sensor | CYYZ11 | range-50 KPa precision 0.5% |
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Fan, S.; Xu, R.; Ji, H.; Yang, S.; Yuan, Q. Experimental Investigation on Contaminated Friction of Hydraulic Spool Valve. Appl. Sci. 2019, 9, 5230. https://doi.org/10.3390/app9235230
Fan S, Xu R, Ji H, Yang S, Yuan Q. Experimental Investigation on Contaminated Friction of Hydraulic Spool Valve. Applied Sciences. 2019; 9(23):5230. https://doi.org/10.3390/app9235230
Chicago/Turabian StyleFan, Shuai, Rui Xu, Hong Ji, Shengqing Yang, and Qingyun Yuan. 2019. "Experimental Investigation on Contaminated Friction of Hydraulic Spool Valve" Applied Sciences 9, no. 23: 5230. https://doi.org/10.3390/app9235230
APA StyleFan, S., Xu, R., Ji, H., Yang, S., & Yuan, Q. (2019). Experimental Investigation on Contaminated Friction of Hydraulic Spool Valve. Applied Sciences, 9(23), 5230. https://doi.org/10.3390/app9235230