Numerical Study on the Influence of Combined Rectification Facilities on the Flow in the Forebay of Pumping Station
Abstract
:1. Introduction
2. Research Object
3. Numerical Simulation
3.1. Turbulence Model
3.2. Calculation Region and Grid
3.3. Boundary Condition
4. Simulation Analysis of Forebay Flow in Original Scheme
- (1)
- The diffusion angle of the forebay is too large, close to the critical value of the pumping station design specification [24] (the forebay diffusion angle of the forward water pumping station is <40°).
- (2)
- The forebay of the pumping station uses pressurized steel pipes to divert water, which causes high-speed water jets to form and impact the pier, thereby forming reverse water flow. This occurrence causes large-scale backflow, vortexing, and other undesirable flow patterns in the forebay.
5. Analysis of Influence of Rectification Facilities on Forebay Flow
5.1. Rectification Facilities and Operating Conditions
5.2. Analysis of the Influence of Rectification Facilities on Forebay Flow
5.2.1. Comparative Analysis of Forebay Flow under Different Operating Conditions
5.2.2. Comparative Analysis of Unit Flow Distribution
5.2.3. Comparative Analysis of Flow Velocity Distribution Uniformity and Average Drift Angle
6. Conclusions
- In the original scheme, the forebay of the research object has large-scale backflow, vortex, and other adverse flow structures when the units are turned on and running under the design working conditions. When multiple units run in parallel, uneven flow distribution occurs and the pumps have poor water inlet conditions, and this situation becomes more and more serious as the position moves down.
- The bottom sill is set in the forebay and causes the following benefits: Improves the centering of the mainstream, facilitates the diffusion of water flow on the plane, reduces the range of the forebay recirculation zone, and improves the uniformity of flow velocity distribution at the entrance of the suction horn pipe and the flow distribution uniformity of each operating unit. However, there are still backflow and vortices on both sides of the front pool, which need to be further improved.
- The combined facility of “bottom sill + diversion pier” is added to the forebay. The bottom sill diverts the central water beam from the water diversion pipe to spread to both sides of the forebay. The diversion pier then performs secondary rectification on the diverted forebay flow, which effectively improves the centering of the mainstream.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Ezz-Aldeen, M.; Al-Ansari, N.; Abd-Albaki, Y. Sediment control strategies for sustainable water intake. Dams Reserv. 2021, 31, 21–30. [Google Scholar] [CrossRef]
- Samsudin, M.L.; Munisamy, K.M.; Thangaraju, S.K. Review of Operational Challenges and Changing Conditions associated with Offshore Submerged Vertical Pumping Station. In Proceedings of the 7th International Conference on Cooling & Heating Technologies (ICCHT 2014), Selangor, Malaysia, 4–6 November 2014; Volume 88. [Google Scholar]
- Moreno-Rodenas, A.M.; Duinmeijer, A.; Clemens, F.H.L.R. Deep-learning based monitoring of FOG layer dynamics in wastewater pumping stations. Water Res. 2021, 202, 117482. [Google Scholar] [CrossRef]
- Hiromasa, S.; Hara, S.; Inaoka, K. The velocity and thermal fields of two parallel plane jets using simultaneous PIV and two-color LIF measurements. Int. J. Heat Fluid Flow 2023, 103, 109192. [Google Scholar] [CrossRef]
- Chesnakas, C.J.; Dancey, C.L. Three-component LDA measurements in an axial-flow compressor. J. Propuls. Power 1990, 6, 474–481. [Google Scholar] [CrossRef]
- Kim, C.G.; Choi, Y.D.; Choi, J.W. A study on the effectiveness of an anti vortex device in the sump model by experiment and CFD. IOP Conf. Ser. Earth Environ. Sci. 2012, 15, 072004. [Google Scholar] [CrossRef]
- Harding, S.F.; Richmond, M.C.; Romero-Gomez, P.; Serkowski, J.A. Effects of non-homogeneous flow on ADCP data processing in a hydroturbine forebay. Flow Meas. Instrum. 2016, 52, 1–9. [Google Scholar] [CrossRef]
- Amin, A.; Kim, B.H.; Kim, C.G.; Lee, Y.H. Numerical Analysis of Vortices Behavior in a Pump Sump. IOP Conf. Ser. Earth Environ. Sci. 2019, 240, 032020. [Google Scholar] [CrossRef]
- Dimas, D.A.A.; Vouros, A.P. Effect of Cross-Flow Velocity at Forebay on Swirl in Pump Suction Pipe: Hydraulic Model of Seawater Intake at Aliveri Power Plant in Greece. J. Hydraul. Eng. 2012, 138, 812–816. [Google Scholar] [CrossRef]
- Zhang, X.; Zhou, J.; Liang, J.; Zhang, H. Experimental research on flow pattern of forebay of side-inlet pumping station. S. N. Water Transf. Water Sci. Technol. 2016, 14, 101–105. [Google Scholar]
- Ying, J.; Yu, X.; He, W.; Zhang, J. The flow pattern and combined rectification scheme of the forebay of pumping station based on fluid volume model. J. Drain. Irrig. Mach. Engin 2020, 38, 476–480+493. [Google Scholar]
- Rtimi, R.; Sottolichio, A.; Tassi, P. The Rance tidal power station: Toward a better understanding of sediment dynamics in response to power generation. Renew. Energy 2022, 201, 323–343. [Google Scholar] [CrossRef]
- Karami, H.; Farzin, S.; Sadrabadi, M.T. Simulation of flow pattern at rectangular lateral intake with different dike and submerged vane scenarios. Water Sci. Eng. 2017, 10, 246–255. [Google Scholar] [CrossRef]
- Li, Y.; Gu, J.; Guo, C.; Zhou, C. Flow Patterns and Rectification Measures in the Forebay of Pumping Station. IOP Conf. Ser. Mater. Sci. Eng. 2020, 794, 012058. [Google Scholar] [CrossRef]
- Luo, C.; He, Y.; Shang, Y.; Cong, X.; Ding, C.; Cheng, L.; Lei, S. Flow Characteristics and Anti-Vortex in a Pump Station with Laterally Asymmetric Inflow. Processes 2022, 10, 2398. [Google Scholar] [CrossRef]
- Moussa, A.M. Solving the problem of sedimentation at water intake of Rowd El-Farag pump station using 2D model. Ain Shams Eng. J. 2010, 1, 103–114. [Google Scholar] [CrossRef]
- Zhou, J.; Zhao, M.; Wang, C.; Gao, Z. Optimal Design of Diversion Piers of Lateral Intake Pumping Station Based on Orthogonal Test. Shock Vib. 2021, 2021, 6616456. [Google Scholar] [CrossRef]
- Xu, C.; Wang, R.; Liu, H.; Zhang, R.; Wang, M.; Wang, Y. Flow pattern and anti-silt measures of straight-edge forebay in large pump stations. Int. J. Heat Technol. 2018, 36, 1130–1139. [Google Scholar] [CrossRef]
- Mi, Z.; Zhou, D.; Mao, Y. Three-dimensional CFD simulation of inlet structure flow in pumping station based on Eulerian solid-liquid two-phase flow model. J. Drain. Irrig. Mach. Eng. 2015, 33, 494–498. [Google Scholar]
- Zhou, J.; Zhong, Z.; Liang, J.; Shi, X. Three-dimensional Numerical Simulation of Side-intake Forebay of Pumping Station. J. Irrig. Drain. 2015, 34, 52–55+80. [Google Scholar]
- Nasr, A.; Yang, F.; Zhang, Y.; Wang, T.; Hassan, M. Analysis of the Flow Pattern and Flow Rectification Measures of the Side-Intake Forebay in a Multi-Unit Pumping Station. Water 2021, 13, 2025. [Google Scholar] [CrossRef]
- Yang, F.; Zhang, Y.; Liu, C.; Wang, T.; Jiang, D.; Jin, Y. Numerical and Experimental Investigations of Flow Pattern and Anti-Vortex Measures of Forebay in a Multi-Unit Pumping Station. Water 2021, 13, 935. [Google Scholar] [CrossRef]
- Yanase, S.; Yamasaki, R.; Kouchi, T.; Hosoda, S.; Nagata, Y.; Shunji, H.; Kawabe, T.; Takami, T. Numerical study of air-entraining and submerged vortices in a pump sump. In Proceedings of the 29th IAHR Symposium on Hydraulic Machinery and Systems, Kyoto, Japan, 16–21 September 2018. [Google Scholar]
- GB50265-2010; Design Code for Pumping Station. Standards Press of China: Beijing, China, 2010.
- Lu, W.; Yao, T.; Xia, H.; Xu, B. Numerical simulation of diversion piers in forebay under asymmetric operation of pumping station units. J. Yangzhou Univ. Nat. Sci. Ed. 2018, 21, 62–67. [Google Scholar]
Water Diversion Pipe + Forebay | Inlet Pool | Suction Trumpet | Total |
---|---|---|---|
Number of grids (10,000) | 165.14 | 34.48 | 249.55 |
Program Number | Rectification Measures | Scheme Description |
---|---|---|
Scheme 1 | Bottom sill | Located at 10 m in front of the forebay, across the bottom, width × height: 1 × 1.5 m |
Scheme 2 | Bottom sill + diversion pier | Data The diversion pier is located 7 m behind the bottom sill, and the distance between the heads of the two diversion piers is 8.7 m. The length × width × height: 10 × 1 × 5 m, and the included angle with the center line of the forebay is 18° |
Operating Conditions | Rectification Measures | Flow m3/s | Boot Group Number |
---|---|---|---|
1 | Original design scheme | 11.25 | 1#, 3#, 5# |
2 | 15 | 1#, 2#, 4#, 5# | |
3 | 18.75 | 1#, 2#, 3#, 4#, 5# | |
4 | Scheme 1 | 11.25 | 1#, 3#, 5# |
5 | 15 | 1#, 2#, 4#, 5# | |
6 | 18.75 | 1#, 2#, 3#, 4#, 5# | |
7 | Scheme 2 | 11.25 | 1#, 3#, 5# |
8 | 15 | 1#, 2#, 4#, 5# | |
9 | 18.75 | 1#, 2#, 3#, 4#, 5# |
Original Scheme | Bottom Sill | “Bottom Sill + Diversion Pier” | ||
---|---|---|---|---|
Three units run in parallel | Velocity distribution uniformity Va | 73.58% | 76.20% | 77.38% |
Mean drift angle θ | 18.21° | 16.89° | 15.42° | |
Four units run in parallel | Velocity distribution uniformity Va | 73.37% | 74.85% | 78.88% |
Mean drift angle θ | 22.87° | 19.88° | 14.43° | |
Five units run in parallel | Velocity distribution uniformity Va | 70.52% | 75.62% | 77.98% |
Mean drift angle θ | 21.09° | 20.33° | 15.30° |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Zheng, X.; Zhang, P.; Zhang, W.; Yu, Y.; Zhao, Y. Numerical Study on the Influence of Combined Rectification Facilities on the Flow in the Forebay of Pumping Station. Water 2023, 15, 3847. https://doi.org/10.3390/w15213847
Zheng X, Zhang P, Zhang W, Yu Y, Zhao Y. Numerical Study on the Influence of Combined Rectification Facilities on the Flow in the Forebay of Pumping Station. Water. 2023; 15(21):3847. https://doi.org/10.3390/w15213847
Chicago/Turabian StyleZheng, Xiaobo, Pengli Zhang, Wenjing Zhang, Yue Yu, and Yaping Zhao. 2023. "Numerical Study on the Influence of Combined Rectification Facilities on the Flow in the Forebay of Pumping Station" Water 15, no. 21: 3847. https://doi.org/10.3390/w15213847
APA StyleZheng, X., Zhang, P., Zhang, W., Yu, Y., & Zhao, Y. (2023). Numerical Study on the Influence of Combined Rectification Facilities on the Flow in the Forebay of Pumping Station. Water, 15(21), 3847. https://doi.org/10.3390/w15213847