The Effect of Root Clearance on Mechanical Energy Dissipation for Axial Flow Pump Device Based on Entropy Production
Abstract
:1. Introduction
2. Numerical Simulation
2.1. Computational Domain
2.2. Boundary Condition
2.3. Entropy Production Theory
3. Test Measurement
3.1. Test Equipment
3.2. Test Validation
4. Analysis of Calculation Results
4.1. Comparison of Pump Performance
4.2. Analysis of Inner Flow Dissipation
5. Conclusions
- (1)
- The overall direct dissipation PD of each hydraulic component was negligible, compared with overall indirect dissipation PI. In addition, the PI of the inflow runner was much lower than that of the impeller, outflow runner, and diffuser. The PI of outflow runner decreased with decreasing flow rate, whereas that of impeller and diffuser reach a minimum value at 0.9 Qdes and 1.1 Qdes, respectively.
- (2)
- Driven by the pressure difference on the blade surface, the leakage flow in the root clearance led to the distortion of the flow pattern in the impeller, and the impeller-diffuser interaction became stronger. The indirect dissipation rate near the trailing edge of the blade and the PI of the impeller increased with increasing root clearance.
- (3)
- The flow pattern inside the diffuser was unsteady due to deterioration of inflow conditions caused by leakage flow from the root clearance. Therefore, both the indirect dissipation rate at the leading edge of the blade and near inlet and PI of the diffuser increased with increasing root clearance radius.
- (4)
- The hydraulic losses increased with increasing root clearance. However, if the root clearance is too small, the range of blade adjustment will be reduced, thereby narrowing the high-efficiency region range. The research results can reference the axial flow pump’s root clearance design and help designers find a balance point between the range of blade adjustment and hydraulic performance.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
(m3/s) | Flow rate |
(m3/s) | Design flow rate |
(m) | Head of axial flow pump device |
(m3/s) | Design head of axial flow pump device |
(%) | Efficiency of axial flow pump device |
(%) | Design efficiency of axial flow pump device |
(r/min) | Rotating speed |
(°) | Specific speed of axial flow pump device |
(m/s) | Standard deviation of relative velocity |
T (K) | Temperature |
Pm (W) | Motor input power |
(kg/m3) | Water density |
Dissipation rate of turbulence energy | |
(m/s) | Average velocity component in x direction |
(m/s) | Average velocity component in y direction |
(m/s) | Average velocity component in z direction |
(m/s) | Velocity fluctuation component in x direction |
(m/s) | Velocity fluctuation component in y direction |
(m/s) | Velocity fluctuation component in z direction |
S [J/(K·kg)] | Specific entropy |
PD (W) | Direct power loss |
PI (W) | Indirect power loss |
Rt (mm) | Root clearance radius |
(m/s) | Average velocity of the node in a single rotation cycle |
rh (mm) | Hub radius |
rt (mm) | Impeller rim radius |
3D | Three-Dimensional |
RANS | Reynolds Averaged Navier–Stokes |
CFD | Computational Fluid Dynamics |
EXP | Experiment |
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Design Parameters (CFD Results Under Rt of 0 mm) | |||
design flow rate (m3/s) | 0.308 | Rotational speed (r/min) | 1340 |
Design head (m) | 4.44 | Specific speed | 887.4 |
Geometry Parameters | |||
Impeller blade number | 3 | Diffuser blade number | 6 |
Impeller diameter (mm) | 300 | Outlet diameter of diffuser (mm) | 312.8 |
Tip clearance (mm) | 0.3 | Root clearance radius (mm) | 0/2.7/5/8 |
Equipment name | Instrument Model | Measuring Range | Measurement Uncertainty |
---|---|---|---|
Intelligent electromagnetic flowmeter | OPTIFLUX2000F | 0 ~ 1800 m3/h | ≤±0.2% |
Smart differential pressure transmitter | EJA | 0 ~ 10 m | ≤±0.1% |
Intelligent torque speed sensor | JCL1 | 0 ~ 200 N·m | ≤±0.1% |
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Li, Y.; Zheng, Y.; Meng, F.; Osman, M.K. The Effect of Root Clearance on Mechanical Energy Dissipation for Axial Flow Pump Device Based on Entropy Production. Processes 2020, 8, 1506. https://doi.org/10.3390/pr8111506
Li Y, Zheng Y, Meng F, Osman MK. The Effect of Root Clearance on Mechanical Energy Dissipation for Axial Flow Pump Device Based on Entropy Production. Processes. 2020; 8(11):1506. https://doi.org/10.3390/pr8111506
Chicago/Turabian StyleLi, Yanjun, Yunhao Zheng, Fan Meng, and Majeed Koranteng Osman. 2020. "The Effect of Root Clearance on Mechanical Energy Dissipation for Axial Flow Pump Device Based on Entropy Production" Processes 8, no. 11: 1506. https://doi.org/10.3390/pr8111506
APA StyleLi, Y., Zheng, Y., Meng, F., & Osman, M. K. (2020). The Effect of Root Clearance on Mechanical Energy Dissipation for Axial Flow Pump Device Based on Entropy Production. Processes, 8(11), 1506. https://doi.org/10.3390/pr8111506