Numerical Investigation of Tip Leakage Vortex Cavitating Flow in a Waterjet Pump with Emphasis on Flow Characteristics and Energy Features
Abstract
:1. Introduction
2. Numerical Method
2.1. Governing Equations
2.2. Cavitation Model
3. Physical Model, Numerical Setup, and Mesh Information
4. Results and Discussions
4.1. Performance Analysis and Grid-Independence Test
4.2. Vortex Characteristics in the Tip Clearance
4.2.1. Vortex Distribution and Formation Mechanism
4.2.2. Vortex Evolution
4.3. Influence of the Cavitation on the Vortex Evolution
4.4. Entropy-Production Features in the Tip Clearance
5. Conclusions
- (1)
- The predicted hydrodynamic performance and cavitation patterns in the waterjet pump agree well with previous experimental data. The vortex structures could be accurately captured by DDES. Therefore, the model and the selected grid and numerical calculation method are suitable for capturing the transient cavitating flow.
- (2)
- The vortex characteristics in the tip clearance were investigated based on the flow distribution, formation mechanism, and evolution of the vortices. The results show that the vortex evolution in the waterjet pump was similar to that around a hydrofoil [30] and can be divided into three stages, but the vorticity variations in the waterjet pump were more complicated.
- (3)
- The relative-vorticity-transport equation was applied to discover the reason for the differences between the TLV vorticity variation observed in the waterjet pump and that observed around a hydrofoil [30]. The results indicate that the drastic fusion process of TSV cavity and the TLV cavity in the waterjet pump resulted in the formation of a triangular cavitation region near the blade tip, which is difficult to reproduce by stationary hydrofoil simulation. This fusion process caused the local variation of fluid volume and further affected the vorticity transport, which is probably the main reason for differences in the TLV vorticity variation inside the waterjet pump and around hydrofoils [30].
- (4)
- The entropy-production evaluation method considering the phase transition was then used to analyze the dissipation losses in the complex cavitation region. The results indicate that the drastic fusion process of the TSV cavity and the TLV cavity in the waterjet pump significantly influenced the entropy-production-rate distributions and enhanced the disturbance of the flow field. In addition, severe phase transition occurred in the drastic fusion region accompanied by huge phase-transition losses.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Mesh No. | Number of Elements |
---|---|
Mesh 1 | 3,392,135 |
Mesh 2 | 6,497,196 |
Mesh 3 | 11,102,036 |
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Lv, S.; Wang, X.; Cheng, H.; Ji, B. Numerical Investigation of Tip Leakage Vortex Cavitating Flow in a Waterjet Pump with Emphasis on Flow Characteristics and Energy Features. Energies 2022, 15, 6916. https://doi.org/10.3390/en15196916
Lv S, Wang X, Cheng H, Ji B. Numerical Investigation of Tip Leakage Vortex Cavitating Flow in a Waterjet Pump with Emphasis on Flow Characteristics and Energy Features. Energies. 2022; 15(19):6916. https://doi.org/10.3390/en15196916
Chicago/Turabian StyleLv, Shujian, Xincheng Wang, Huaiyu Cheng, and Bin Ji. 2022. "Numerical Investigation of Tip Leakage Vortex Cavitating Flow in a Waterjet Pump with Emphasis on Flow Characteristics and Energy Features" Energies 15, no. 19: 6916. https://doi.org/10.3390/en15196916
APA StyleLv, S., Wang, X., Cheng, H., & Ji, B. (2022). Numerical Investigation of Tip Leakage Vortex Cavitating Flow in a Waterjet Pump with Emphasis on Flow Characteristics and Energy Features. Energies, 15(19), 6916. https://doi.org/10.3390/en15196916