Analysis of Sediment and Water Flow and Erosion Characteristics of Large Pelton Turbine Injector
Abstract
:1. Introduction
2. Mathematical Model
2.1. Turbulence Model
2.2. Solid–Liquid Two-Phase Flow Model
2.3. Particle Trajectory Model
2.4. Sediment Erosion Model
3. Geometric Physical Model and Boundary Conditions
3.1. Geometric Modeling and Meshing
3.2. Boundary Conditions and Calculation Settings
4. Numerical Calculation Results and Analysis
4.1. Analysis of the Flow Field in the Injector
4.2. Analysis of the Velocity Deficit Phenomenon in the Injector
4.3. Effect of Sediment Particle Diameter on the Injector Erosion Analysis
5. Conclusions
- (1)
- The pressure at the nozzle outlet is minimum. The direction of the pressure gradient changes, and the velocity is maximum. The boundary layer on the surface of the injector causes a velocity deficit, which affects the velocity distribution of the jet and the quality of the jet. Water shoots out of the nozzle, and the maximum jet velocity continues to increase, before decreasing again.
- (2)
- The sediment particle diameters will affect the erosion of the needle. The smaller the particle size, the more serious the erosion of the needle rod and the head. The erosion of the lower needle guide is more serious than that of the upper needle guide. The erosion of the needle rod and needle guide is groove-shaped. The erosion of the needle is mainly point-like and exhibits asymmetrical distribution.
- (3)
- The particle size has little effect on the erosion location of the nozzle port ring; however, it has an effect on the erosion amount. The erosion of the nozzle port ring exhibits symmetrical distribution. The erosion of the nozzle port ring is greater than that of the needle with the same sediment particle diameter.
- (4)
- The sediment erosion of the power station is very serious, and anti-erosion measures are necessary.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Point | Angle | Value |
---|---|---|
1 | 0 | 0 |
2 | 20 | 0.8 |
3 | 30 | 1 |
4 | 45 | 0.5 |
5 | 90 | 0.4 |
Name | Nozzle Inlet Diameter/mm | Nozzle Outlet Diameter/mm | Needle Stroke/mm | Number of Needle Guide/Number |
---|---|---|---|---|
Parameter | 1502 | 518 | 316.3 | 2 |
Option | 1 | 2 | 3 | 4 |
---|---|---|---|---|
Numbers of grid cells | 445,814 | 800,121 | 1,788,149 | 2,288,892 |
Sediment Particle Diameter dp (mm) | Needle Maximum Erosion Rate Ren (mm/s) | Nozzle Maximum Erosion Rate Res (mm/s) |
---|---|---|
0.001 | 3.243 × 10−8 | 7.718 × 10−8 |
0.005 | 1.57 × 10−8 | 4.454 × 10−8 |
0.0142 | 7.701 × 10−9 | 2.432 × 10−8 |
0.05 | 4.761 × 10−9 | 1.064 × 10−8 |
0.1 | 2.832 × 10−9 | 9.837 × 10−9 |
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Liu, J.; Pang, J.; Liu, X.; Huang, Y.; Deng, H. Analysis of Sediment and Water Flow and Erosion Characteristics of Large Pelton Turbine Injector. Processes 2023, 11, 1011. https://doi.org/10.3390/pr11041011
Liu J, Pang J, Liu X, Huang Y, Deng H. Analysis of Sediment and Water Flow and Erosion Characteristics of Large Pelton Turbine Injector. Processes. 2023; 11(4):1011. https://doi.org/10.3390/pr11041011
Chicago/Turabian StyleLiu, Jitao, Jiayang Pang, Xiaobing Liu, Yu Huang, and Huiming Deng. 2023. "Analysis of Sediment and Water Flow and Erosion Characteristics of Large Pelton Turbine Injector" Processes 11, no. 4: 1011. https://doi.org/10.3390/pr11041011
APA StyleLiu, J., Pang, J., Liu, X., Huang, Y., & Deng, H. (2023). Analysis of Sediment and Water Flow and Erosion Characteristics of Large Pelton Turbine Injector. Processes, 11(4), 1011. https://doi.org/10.3390/pr11041011