Optimization Algorithm and Joint Simulation to Micro Thermal Deformation Using Temperature Measurement in the Orifice of Hydraulic Valve
Abstract
:1. Introduction
2. Design of the Experimental Device
3. Analysis of Experiment Results
3.1. Analysis of Temperature Measurement Results under Different Pressure Drops
3.2. Characteristics of the Temperature Distribution in the Valve Orifice
3.3. Analysis of Thermal Deformation Observation Results
3.4. Optimal Algorithm of Thermal Deformation Based on Measured Temperature Data
4. Fluent and Workbench Joint Simulation
4.1. CFD (Computational Fluid Dynamics) Model
4.2. Calculation and Boundary Conditions
4.3. Analysis of Simulation Results
4.4. Accuracy Verification of Simulation
5. Discussion
6. Conclusions
- The proposed optimization algorithm based on measurement data (M-OA) can be successfully implemented in calculating the thermal deformation of a hydraulic valve orifice with an uneven temperature distribution. When the sharp edge was at a temperature of 60 °C, the thermal deformation results obtained via observation and M-OA were 7.7 μm and 7.62803 μm, respectively, indicating that the M-OA method is reliable in calculating thermal deformation.
- A large drop in pressure leads to a rapid increase in temperature and causes serious deformation. When the inlet pressures were 1 MPa, 2 MPa and 3 MPa, the temperatures in the sharp edge of the valve orifice reached 41.9 °C, 52.8 °C and 61.4 °C, respectively, and thermal deformation within 60 min was measured at 3.85 μm, 6.71 μm and 8.5 μm, respectively.
- The accuracy rates of the temperature and deformation results calculated via Fluent and Workbench joint simulation are acceptable. When the measurement and M-OA results served as criteria, the accuracy rate of the temperature result calculated with the fluid–solid–heat method reached 95%, and that of the deformation result obtained with the static–structural module reached 82.7% when the inlet pressure ranged from 1 MPa to 3 MPa.
- Spool clamping is considerably affected by the relationships between unilateral clearance lc, radial fretting allowance lr and radial thermal deformation ld. In this study, ld reached 8.3 μm when the temperature of the sharp edge rose to 72.9 °C, meaning that the value of ld is high enough to cause spool clamping for a spool valve of Φ36 mm, with unilateral clearance lc ranging from 5 μm to 7.5 μm. When the radial fretting allowance lr, including thermal deformation of spool and extra displacement, is taken into consideration, there is a higher risk of clamping.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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cμ | c1 | c2 | σk | σε | σT |
---|---|---|---|---|---|
0.09 | 1.44 | 1.92 | 1.0 | 1.3 | 0.9~1.0 |
Items | Fluid (HM46) | Solid (# 45 Steel) |
---|---|---|
Density (kg/m3) | 851–890 | 7850 |
Specific heat (J/kg °C) | 1890 | 465 |
Thermal conductivity (W/m·K) | 0.12 | 50.2 |
Dynamic viscosity (kg/m·s) | 0.014–0.165 | |
Young modulus (MPa) | 2.06 × 105 | |
Poisson’s ratio | 0.3 |
Items | 1 MPa | 2 MPa | 3 MPa |
---|---|---|---|
Measurement T (°C) | 41.9 | 52.8 | 61.4 |
Simulation T (°C) | 42 | 56 | 65 |
M-OA D (μm) | 3.85 | 6.71 | 8.5 |
Simulation D (μm) | 4.1 | 6.9 | 9.4 |
Simulation | 1 MPa | 2 MPa | 3 MPa | Average |
---|---|---|---|---|
Temperature | 98.3% | 94.7% | 91.8% | 95% |
Deformation | 86.2% | 80.2% | 81.7% | 82.7% |
Spool Diameter (mm) | Valve Hole Diameter (mm) | Roughness | Unilateral Clearance of Spool Valve (μm) | ||
---|---|---|---|---|---|
Spool | Valve hole | Minimum size | Maximum size | ||
0.4 | 0.4 | 5 | 7.5 |
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Chen, Q.; Ji, H.; Zhao, H.; Zhao, J. Optimization Algorithm and Joint Simulation to Micro Thermal Deformation Using Temperature Measurement in the Orifice of Hydraulic Valve. Processes 2020, 8, 1136. https://doi.org/10.3390/pr8091136
Chen Q, Ji H, Zhao H, Zhao J. Optimization Algorithm and Joint Simulation to Micro Thermal Deformation Using Temperature Measurement in the Orifice of Hydraulic Valve. Processes. 2020; 8(9):1136. https://doi.org/10.3390/pr8091136
Chicago/Turabian StyleChen, Qianpeng, Hong Ji, Hongke Zhao, and Jing Zhao. 2020. "Optimization Algorithm and Joint Simulation to Micro Thermal Deformation Using Temperature Measurement in the Orifice of Hydraulic Valve" Processes 8, no. 9: 1136. https://doi.org/10.3390/pr8091136
APA StyleChen, Q., Ji, H., Zhao, H., & Zhao, J. (2020). Optimization Algorithm and Joint Simulation to Micro Thermal Deformation Using Temperature Measurement in the Orifice of Hydraulic Valve. Processes, 8(9), 1136. https://doi.org/10.3390/pr8091136