Research on Visualization of Inducer Cavitation of High-Speed Centrifugal Pump in Low Flow Conditions
Abstract
:1. Introduction
2. Research Object
3. Numerical Method
3.1. Continuity Equation and Momentum Equation
3.2. Cavitation Model
3.3. Numerical Setup and Grid Validation
4. Test Setup
5. Analysis of the Experimental Results
5.1. Performance Curve of High-Speed Magnetic Pump
5.2. Analysis of the Backflow Vortex
5.3. Cavitation Evolution in the Inducer with Different NPSH
5.4. Analysis of Cavitation Asymmetry
5.5. Comparison of Cavitation Performance
6. Conclusions
- A band-shaped vertex appeared in the inlet pipe when the inducer operated under extremely low flow rate, which was at odds with the designed condition.
- The backflow vortex in the inlet pipe rotated with the inducer. Furthermore, the rotational speed of the backflow vortex was approximately half of the inducer.
- The volume of the backflow vortex decreased with the flow rate increase. When the flow rate increased to 0.3 Qd, the band-shaped vortex in the inlet pipe disappeared.
- When the flow rate was 0.27 Qd and NPSH was larger than 6.72 m, cavitation was in the initial stage and was asymmetrical; when NPSH dropped to 5.41 m, cavitation was in the developing stage and was less asymmetrical; when NPSH dropped to 3.81 m, cavitation evolved to the deteriorating stage, plenty of bubbles entered the main impeller, resulting in full-scale cavitation and rapid decline of pump performance.
- The cavitation performance under extremely low flow rate was worse than that of under design condition. The NPSH value of 0.27 Qd was 7.5% greater than that of under design condition.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
Q | Volume flow rate |
Qd | Design volume flow rate |
H | Head |
NPSH | Net positive suction head |
n | Rotate speed |
P | Power |
η | Efficiency |
Pin | Static pressure at pump inlet |
Pv | Vapor pressure |
ρ | Fluid density |
g | Gravitational acceleration |
t | Time |
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Parameter | Value |
---|---|
Blade tip diameter/mm | 58.8 |
Hub diameter/mm | 20 |
Number of blades | 2 |
Sweepback angle of leading edge/° | 178.9 |
Axial length/mm | 37.4 |
No. of Cells | Head/m | Difference in Head/% |
---|---|---|
1,226,030 | 137.56 | 1.4 |
1,671,438 | 136.19 | 0.2 |
2,536,247 | 136.2 | 0.2 |
3,790,004 | 136.22 | 0.2 |
Domain | Inducer | Impeller | Volute | Inlet Section | Infront Cavity | Outlet Section | Back Cavity |
---|---|---|---|---|---|---|---|
No. of cells | 561,306 | 614,600 | 361,840 | 206,976 | 340,470 | 82,555 | 368,500 |
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Xu, Z.; Kong, F.; Zhang, H.; Zhang, K.; Wang, J.; Qiu, N. Research on Visualization of Inducer Cavitation of High-Speed Centrifugal Pump in Low Flow Conditions. J. Mar. Sci. Eng. 2021, 9, 1240. https://doi.org/10.3390/jmse9111240
Xu Z, Kong F, Zhang H, Zhang K, Wang J, Qiu N. Research on Visualization of Inducer Cavitation of High-Speed Centrifugal Pump in Low Flow Conditions. Journal of Marine Science and Engineering. 2021; 9(11):1240. https://doi.org/10.3390/jmse9111240
Chicago/Turabian StyleXu, Zhenfa, Fanyu Kong, Hongli Zhang, Kun Zhang, Jiaqiong Wang, and Ning Qiu. 2021. "Research on Visualization of Inducer Cavitation of High-Speed Centrifugal Pump in Low Flow Conditions" Journal of Marine Science and Engineering 9, no. 11: 1240. https://doi.org/10.3390/jmse9111240
APA StyleXu, Z., Kong, F., Zhang, H., Zhang, K., Wang, J., & Qiu, N. (2021). Research on Visualization of Inducer Cavitation of High-Speed Centrifugal Pump in Low Flow Conditions. Journal of Marine Science and Engineering, 9(11), 1240. https://doi.org/10.3390/jmse9111240