Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System †
Abstract
:1. Introduction
2. System Design Overview
3. Modeling of the System
4. Simulation Results and Parameters Analysis
4.1. The Influence of Different Spool Rotation Speeds on the Excitation Waveform
4.2. The Influence of Different Oil Supply Pressures on the Excitation Waveform
4.3. The Influence of Different Orifice Numbers on the Excitation Waveform
4.4. The Influence of Different Orifice Shapes on the Excitation Waveform
4.5. The Influence of Different Orifice Axial Lengths on the Excitation Waveform
4.6. The Influence of Different Transient Flow Torques on the Excitation Waveform
4.7. The Influence of Different Loads on the Excitation Waveform
5. Experimental Tests
6. Conclusions
- The proposed HCRV excitation system can achieve a high reversing frequency (300 HZ) and integrate the system more tightly. It is appropriate for electro-hydraulic excitation systems.
- The spool rotation speed is positive relative to the proportional flow control valve opening and the oil supply pressure.
- Parameters such as the spool rotation speed, oil supply pressure, orifice number, orifice axial length, and load have relatively obvious effects on the vibration waveform, while the orifice shape and transient flow torque have little influence on the waveform.
- The supply pressure, orifice number, and orifice shape have greater effects on the vibration reversing frequency, and the reversing frequency is proportional to the variation of the orifice number. The orifice axial length, transient flow torque, and load have almost no effects on the vibration reversing frequency.
- The external load has little effect on the vibration reversing frequency, which reflects the load adaptability of the HCRV excitation system.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Parameter | Value |
---|---|
Proportional speed regulating valve | 90 L |
Accumulator | 20 L |
Piston diameter | 80 mm |
Cylinder’s length of stroke | 200 mm |
Valve spool radius r | 0.0155 m |
Flow coefficient Cd | 0.67 |
Fluid density ρ | 880 Kg/m3 |
Effective bulk modulus βe | 8 × 108 Pa |
Chambers volume Vt | 9.71 × 10−4 m3 |
Piston effective area Ap | 4.06 × 10−3 m2 |
Device | Specification | Title 3 |
---|---|---|
Variable pump | Maximum flow rate | 375 L/min |
Proportional speed regulating valve | Maximum flow rate | 90 L/min |
Motor | Maximum speed | 7500 r/min |
ICP acceleration sensor | Full scale | 1000 g |
Flowmeters | Full scale Measurement error | 315 L/min ±0.3% |
Torque and speed sensor | Full scale Measurement error | 10 N·m 6000 r/min 0.1% |
Arduino | Mega 2560 |
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Li, W.; Gong, G.; Zhang, Y.; Liu, J.; Chen, Y.; Wang, F. Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System. Energies 2020, 13, 3905. https://doi.org/10.3390/en13153905
Li W, Gong G, Zhang Y, Liu J, Chen Y, Wang F. Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System. Energies. 2020; 13(15):3905. https://doi.org/10.3390/en13153905
Chicago/Turabian StyleLi, Wenjing, Guofang Gong, Yakun Zhang, Jian Liu, Yuxi Chen, and Fei Wang. 2020. "Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System" Energies 13, no. 15: 3905. https://doi.org/10.3390/en13153905
APA StyleLi, W., Gong, G., Zhang, Y., Liu, J., Chen, Y., & Wang, F. (2020). Development and Parameters Analysis of Hydraulic Controlled Rotary Valve Excitation System. Energies, 13(15), 3905. https://doi.org/10.3390/en13153905