Research on the Flow Characteristics of Power-Law Fluids in Self-Priming Sewage Pumps
Abstract
:1. Introduction
2. Establishment of the Constitutive Equation for Power-Law Fluids
3. Numerical Computation Methods and Settings for Sewage Pumps
3.1. Fluid Domain and Mesh
3.2. Boundary Condition Settings
3.3. Numerical Computation Method Validation
4. Results Analysis
4.1. Velocity Analysis
4.2. Pressure Analysis
4.3. Vortex Structure and Vorticity Analysis
4.4. Wall Shear Stress Analysis
4.5. Analysis of Pressure Pulsations on Sewage Pump Blades and Baffle Plates
5. Conclusions
- Comparing the influence of different concentrations of CMC solution on the sewage pump, it was found that there is minimal difference in the velocity distribution.
- The vortices in the pump are mainly concentrated at the impeller inlet. This is because of the higher flow velocity at the impeller inlet, where power-law fluids experience greater shear forces, leading to a decrease in viscosity. With lower viscosity, the fluid is more prone to shear deformation and vortex motion. With the increase in concentration of CMC solution and the consequent increase in fluid viscosity, the vortices at the impeller inlet increase to some extent. Additionally, at a certain concentration of CMC solution, a small number of vortices are also generated in the volute region. As the concentration of CMC solution in the test pump increases, the strength of vortices at the outer edge of the impeller slightly increases.
- Analysis of wall shear stress revealed that the regions of high shear stress on the volute casing are located on both sides of the volute outlet, and they tend to slightly increase with the increase in concentration of CMC solution.
- The pressures on the impeller blades, within the flow passages, and at the tongue of the volute decrease with the increase in concentration of CMC solution. When the concentration of CMC solution increases from 0.5% to 2.0%, the overall pressure within the flow passages and at the tongue of the volute decrease by 16.5% and 3.5%, respectively, indicating the effect of the concentration of power-law fluid on the pressure within the pump.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Design Parameters | Numerical Value | Unit |
---|---|---|
Design Flow Rate | 6.5 | m3/h |
Design Head | 7 | m |
Rotation Speed | 1680 | r/min |
Blade Number | 2 | |
Impeller Inlet Diameter | 60 | mm |
Impeller Outer Diameter | 158 | mm |
Blade Outlet Width | 16 | mm |
Blade Wrap Angle | 255 | ° |
Computational Conditions | Settings |
---|---|
Inlet Boundary Condition | 6.5 [m3/h] |
Outlet Boundary Condition | 101,325 [Pa] |
Rotation Speed | 1680 [r/min] |
Turbulence Modeling | the SST k-ω (Steady); the SAS (Transient) |
Time Step Size | 9.921 × 10−5 [s] |
Number of Time Steps | 5400 |
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Li, X.; Zheng, S.; Shao, Z.; Xu, M.; Li, Y.; Huang, Q.; Chai, M.; Sun, Z. Research on the Flow Characteristics of Power-Law Fluids in Self-Priming Sewage Pumps. Water 2024, 16, 1526. https://doi.org/10.3390/w16111526
Li X, Zheng S, Shao Z, Xu M, Li Y, Huang Q, Chai M, Sun Z. Research on the Flow Characteristics of Power-Law Fluids in Self-Priming Sewage Pumps. Water. 2024; 16(11):1526. https://doi.org/10.3390/w16111526
Chicago/Turabian StyleLi, Xukan, Shuihua Zheng, Zhenghao Shao, Mingjie Xu, Yiliang Li, Qing Huang, Min Chai, and Zenan Sun. 2024. "Research on the Flow Characteristics of Power-Law Fluids in Self-Priming Sewage Pumps" Water 16, no. 11: 1526. https://doi.org/10.3390/w16111526
APA StyleLi, X., Zheng, S., Shao, Z., Xu, M., Li, Y., Huang, Q., Chai, M., & Sun, Z. (2024). Research on the Flow Characteristics of Power-Law Fluids in Self-Priming Sewage Pumps. Water, 16(11), 1526. https://doi.org/10.3390/w16111526