Study on the Effect Mechanism of Inlet Pre-Swirl on Pressure Pulsation within a Mixed-Flow Centrifugal Pump
Abstract
:1. Introduction
2. Geometry and Parameters
3. Numerical Modeling
3.1. Model Building
3.2. Governing Equations and Boundary Conditions
3.3. Grid and Irrelevance Analysis
3.4. Monitoring Points Arrangement
4. Results and Discussion
4.1. Pump Performance Validation
4.2. Flow Field Pattern within Impeller and Chamber
4.3. Comparative Analysis of Pressure Pulsation
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbols | |
Q | flow rate, m3/h |
n | rotational speed, r/min |
H | head, m |
ns | specific speed |
Z1 | number of impeller blade |
Z2 | number of diffuser vane |
Din | diameter of inlet, mm |
DShr | diameter of shroud, mm |
DHub | diameter of hub, mm |
DOut | diameter of outlet, mm |
Dout1 | diameter of outlet outer, mm |
DOut2 | diameter of outlet inner, mm |
bOut | width of outlet, mm |
k | turbulent kinetic energy, m2/s2 |
ω | turbulent eddy frequency, s−1 |
ε | turbulent dissipation rate, m2/s3 |
vt | turbulent viscosity, m2/s |
F1, F2 | blending function |
S | vorticity, s−1 |
y | near-wall distance, m |
y+ | dimensionless wall distance |
DH | error in head measurement |
DT | error in shaft power measurement |
DQ | error in flow measurement |
DS | total systematic error |
p | transient pressure, Pa |
average pressure during impeller rotation circle, Pa | |
u2 | impeller outlet circumferential velocity, m/s |
ρ | density of liquid medium, kg/m3 |
Abbreviations | |
SST | shear stress transport |
GGI | general grid interface |
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Impeller | Diffuser | ||
---|---|---|---|
Number of blades Z1 | 6 | Number of vanes Z2 | 7 |
Diameter of shroud DShr (mm) | 120 | Diameter of inlet Din (mm) | 187.2 |
Diameter of hub DHub (mm) | 45.6 | Diameter of outlet outer Dout1 (mm) | 120 |
Diameter of outlet DOut (mm) | 162 | Diameter of outlet inner DOut2 (mm) | 66 |
Width of outlet bOut (mm) | 36 |
Maximum Grid Size (mm) | 2.4 | 2.2 | 2 | 1.8 | 1.6 |
Number of Grids (×106) | 2.9 | 4.8 | 5.7 | 7.0 | 9.1 |
Predicting Head (m) | 22.68 | 22.55 | 22.39 | 22.36 | 22.37 |
Predicting Efficiency (%) | 84.52 | 83.94 | 83.50 | 83.27 | 83.24 |
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Ma, X.; Bian, M.; Yang, Y.; Dai, T.; Tang, L.; Wang, J. Study on the Effect Mechanism of Inlet Pre-Swirl on Pressure Pulsation within a Mixed-Flow Centrifugal Pump. Water 2023, 15, 1223. https://doi.org/10.3390/w15061223
Ma X, Bian M, Yang Y, Dai T, Tang L, Wang J. Study on the Effect Mechanism of Inlet Pre-Swirl on Pressure Pulsation within a Mixed-Flow Centrifugal Pump. Water. 2023; 15(6):1223. https://doi.org/10.3390/w15061223
Chicago/Turabian StyleMa, Xiaogang, Mengying Bian, Yang Yang, Tingting Dai, Lei Tang, and Jun Wang. 2023. "Study on the Effect Mechanism of Inlet Pre-Swirl on Pressure Pulsation within a Mixed-Flow Centrifugal Pump" Water 15, no. 6: 1223. https://doi.org/10.3390/w15061223
APA StyleMa, X., Bian, M., Yang, Y., Dai, T., Tang, L., & Wang, J. (2023). Study on the Effect Mechanism of Inlet Pre-Swirl on Pressure Pulsation within a Mixed-Flow Centrifugal Pump. Water, 15(6), 1223. https://doi.org/10.3390/w15061223