Improvement Design of a Two-Stage Double-Suction Centrifugal Pump for Wide-Range Efficiency Enhancement
Abstract
:1. Introduction
2. Research Objective
3. Setup of Improvement Design
3.1. Design Target
3.2. CFD Setup
3.3. Performance Evaluation
4. Improvement History
5. Comparative Analysis
5.1. Geometry Comparison
5.2. Performance Comparison
5.3. Flow Pattern Comparison
6. Experimental–Numerical Verification
7. Conclusions
- (1)
- The process of improving a pump design is mainly through the judgment of CFD on flow and pump performance and through constantly modifying the design scheme. In this study, a total of 39 improvements were made to the two-stage double-suction centrifugal pump. The efficiency of the pump increased with fluctuations in the 39 improvements, until the performance of the pump finally met the design requirements. This proved that the improvement was feasible.
- (2)
- By comparing the geometry, performance, and flow pattern of the original scheme and the final scheme of the two-stage double-suction centrifugal pump, the geometry of the final scheme was shown to be more suitable for the operating conditions, the internal flow was more stable, and the performance was significantly improved. After improvement, the pump head was increased by 10~15 m, and the efficiency was increased by 4~9% within the operation range.
- (3)
- To achieve this improvement, all the components except the semi-spiral suction chamber were modified for a better performance. The inlet division section was modified by adding a baffle at the fork. The trailing-edge blade angle of the first- and second-stage impellers were increased to a higher head. The section area of the inter-stage channel was reduced because the initial areas were too large, with vortexes and flow separation. The volute section area was increased to reduce the friction loss because of the insufficient area in the original. The hydraulic losses were reduced from about 14% to less than 6% after modification.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Relative Flow Rate Point | Flow Rate (m3/s) | Head Requirement (m) | Efficiency Requirement (%) |
---|---|---|---|
0.30 | 0.250 | 171.0 | - |
0.65 | 0.537 | 158.1 | 80.0 |
0.86 | 0.715 | 143.4 | 84.5 |
1.00 | 0.830 | 132.7 | 82.5 |
1.15 | 0.953 | 113.6 | 81.0 |
Component | Inlet Division Section | Semi-Spiral Suction Chambers | First-Stage Impellers | Inter-Stage Channels | Second-Stage Impeller | Volute | Total |
---|---|---|---|---|---|---|---|
Mesh Node Number | 227,143 | 1,061,812 | 279,590 | 794,134 | 317,946 | 558,224 | 3,238,849 |
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Zhu, D.; Hu, Z.; Chen, Y.; Wang, C.; Yang, Y.; Lu, J.; Song, X.; Tao, R.; Wang, Z.; Ma, W. Improvement Design of a Two-Stage Double-Suction Centrifugal Pump for Wide-Range Efficiency Enhancement. Water 2023, 15, 1785. https://doi.org/10.3390/w15091785
Zhu D, Hu Z, Chen Y, Wang C, Yang Y, Lu J, Song X, Tao R, Wang Z, Ma W. Improvement Design of a Two-Stage Double-Suction Centrifugal Pump for Wide-Range Efficiency Enhancement. Water. 2023; 15(9):1785. https://doi.org/10.3390/w15091785
Chicago/Turabian StyleZhu, Di, Zilong Hu, Yan Chen, Chao Wang, Youchao Yang, Jiahao Lu, Xijie Song, Ran Tao, Zhengwei Wang, and Wensheng Ma. 2023. "Improvement Design of a Two-Stage Double-Suction Centrifugal Pump for Wide-Range Efficiency Enhancement" Water 15, no. 9: 1785. https://doi.org/10.3390/w15091785
APA StyleZhu, D., Hu, Z., Chen, Y., Wang, C., Yang, Y., Lu, J., Song, X., Tao, R., Wang, Z., & Ma, W. (2023). Improvement Design of a Two-Stage Double-Suction Centrifugal Pump for Wide-Range Efficiency Enhancement. Water, 15(9), 1785. https://doi.org/10.3390/w15091785