Phase Distribution in the Tip Clearance of a Multiphase Pump at Multiple Operating Points and Its Effect on the Pressure Fluctuation Intensity
Abstract
:1. Introduction
2. Research Object
3. Numerical Methods and Settings
3.1. Mesh Arrangement
3.2. Mesh and Time Step Independence Verification
3.2.1. Mesh Independence Verification
3.2.2. Time Step Independence Verification
3.3. Boundary Conditions and Settings
3.4. Numerical Method Verification
4. Result and Discussion
4.1. Multiphase Pump Pressurization Performance
4.2. Gas Distribution in the Multiphase Pump Pressurization Unit
4.3. Gas-Liquid Two-Phase Velocity Slip in the Pressurization Unit
4.4. Pressure Fluctuation Intensity in the Tip Clearance
5. Conclusions
- As the tip clearance increases, the pump pressurization performance decreases rapidly. Meanwhile, when Rtc = 0.5 mm, the increase of the IGVF reduces the pump pressurization performance at all simulated operating points. However, when Rtc = 1.0 and 1.5 mm, the increase of the IGVF obviously reduces the pump pressurization performance only at large flow rate. In addition, the gas accumulation in the pump mainly occurs at the hub, blade SS, and tip clearance. Meanwhile, as the tip clearance increases, the gas accumulation in the tip clearance near the impeller blade TE becomes more serious, and the starting point of the gas TLV gradually moves backward.
- Under different tip clearances, the velocity difference between the gas and liquid in the impeller is relatively large. However, in the diffuser it is relatively small. The maximum velocity difference between the gas and liquid is mainly near the impeller streamwise of 0.4. In the meantime, the tip clearance improves the gas-liquid two-phase distribution in the pump, that is, the larger the tip clearance is, the more uniform the gas-liquid two-phase in the pump becomes. However, an excessively large clearance increases hydraulic loss, so the optimal tip clearance needs comprehensive weight.
- The gas leads the maximum pressure fluctuation intensity in the tip clearance closer to the TLF outlet, and the flow separation also penetrates the entire tip clearance in advance. In addition, the flow separation degree in the tip clearance is largely affected by the gas.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Parameters | Mesh 1 | Mesh 2 | Mesh 3 | Mesh 4 | Mesh 5 |
---|---|---|---|---|---|
Mesh number | 2,490,070 | 2,921,104 | 3,251,592 | 3,676,610 | 4,726,647 |
Head | 6.628 | 6.771 | 6.747 | 6.750 | 6.831 |
Efficiency | 35.88% | 37.09% | 37.14% | 37.22% | 37.83% |
Head/Head 1 | 1 | 1.0215 | 1.0179 | 1.0183 | 1.0306 |
Efficiency/Efficiency 1 | 1 | 1.0337 | 1.0349 | 1.0373 | 1.0542 |
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Shi, G.; Liu, Z.; Liu, X.; Xiao, Y.; Tang, X. Phase Distribution in the Tip Clearance of a Multiphase Pump at Multiple Operating Points and Its Effect on the Pressure Fluctuation Intensity. Processes 2021, 9, 556. https://doi.org/10.3390/pr9030556
Shi G, Liu Z, Liu X, Xiao Y, Tang X. Phase Distribution in the Tip Clearance of a Multiphase Pump at Multiple Operating Points and Its Effect on the Pressure Fluctuation Intensity. Processes. 2021; 9(3):556. https://doi.org/10.3390/pr9030556
Chicago/Turabian StyleShi, Guangtai, Zongku Liu, Xiaobing Liu, Yexiang Xiao, and Xuelin Tang. 2021. "Phase Distribution in the Tip Clearance of a Multiphase Pump at Multiple Operating Points and Its Effect on the Pressure Fluctuation Intensity" Processes 9, no. 3: 556. https://doi.org/10.3390/pr9030556
APA StyleShi, G., Liu, Z., Liu, X., Xiao, Y., & Tang, X. (2021). Phase Distribution in the Tip Clearance of a Multiphase Pump at Multiple Operating Points and Its Effect on the Pressure Fluctuation Intensity. Processes, 9(3), 556. https://doi.org/10.3390/pr9030556