Nozzle Jet Deviation from Bucket Pitch Circle’s Effect on the Stability and Efficiency of Pelton Turbine
Abstract
:1. Introduction
2. Materials and Methods
2.1. Two-Phase Flow Model
2.2. Basic Control Equations
2.3. Turbulence Model
3. Water Model and Boundary Conditions of the Computational Domain
3.1. Establishment of Three-Dimensional Water Model of Overflow Components
3.2. Computational Meshing and Irrelevance Validation
3.3. Boundary Condition Setting
4. Flow Calculation and Stability and Efficiency Analysis
4.1. Effect of Deviation on the Internal Flow of the Bucket
4.2. Effect of Deviation on the Forces on the Runner
4.2.1. Effect of Radial Deviation on the Forces on the Runner
4.2.2. Effect of Axial Deviation on the Forces on the Runner
4.3. Effect of Deviation on Runner Pressure Pulsation
4.3.1. Effect of Radial Deviation on Pressure Pulsation of the Runner
4.3.2. Effect of Axial Deviation on the Pressure Pulsation of the Runner
5. Conclusions
- (1)
- A negative area will be formed on the area near the trailing edge of the bucket after the jet deviation, and the phenomena of “back interference” and “jet interference” appear at the same time, which are the main factors causing the decrease in turbine efficiency. The jet deviation affects the flow pattern inside the bucket, which affects the formation of water film and the diffusion rate on the surface of the bucket.
- (2)
- The jet deviation will affect the time of the jet entering the bucket. In the case of radial deviation, the axial force increases by about 2 times and the tangential force decreases by 0.25%. In the case of axial deviation, the axial force of the runner increases 4 times and the tangential force decreases by 0.4%. Since the tangential force is related to the runner torque and directly affects the output of the turbine, the test results show that the occurrences of the radial and axial deviations reduce the turbine efficiency by 0.3% and 0.4%, respectively. This indicates that the effect of axial offset on runner operation is greater than the effect of radial offset on it.
- (3)
- The relative amplitude of pressure pulsation after radial deviation shows an increasing trend compared with that without deviation, the relative amplitudes of pressure pulsation at some monitoring points increase by 60%, and the maximum relative amplitude of pressure pulsation appears in the center of the bucket, which is closely related to the striking effect of the jet. The relative amplitude of pressure pulsation in the case of jet deviation towards the outer edge of the runner increases more than that in the case of deviation towards the runner center, indicating that the pressure pulsation of the turbine will be more intense when the jet is deviated to the outer edge of the runner.
- (4)
- The axial deviation of the jet causes an uneven pressure distribution on both sides of the splitter and an uneven force on the bucket, the relative amplitude of pressure pulsation of the turbine increases significantly, the axial force and axial oscillation of the runner increase, and the bucket is susceptible to vibration and fatigue damage.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Turbulence Model | Computational Efficiency (%) | Rated Efficiency (%) | Relative Error (%) |
---|---|---|---|
Standard k-ε | 81.66 | 91.79 | −11.04 |
RNG k-ε | 88.93 | 91.79 | −3.12 |
SST k-ω | 90.98 | 91.79 | −0.88 |
Name and Unit | Value | Name and Unit | Value |
---|---|---|---|
Number of nozzles | 6 | Rated speed nr (rpm) | 300 |
Jet diameter d (mm) | 258 | Rotor pitch circle diameter D1 (mm) | 2890 |
Rated flow Qr (m3/s) | 30.14 | Maximum width of bucket B (mm) | 890.4 |
Rated head Hr (m) | 457 | Maximum width inside the bucket W (mm) | 835 |
Rated output Pr (MW) | 123 | Number of buckets | 21 |
Scheme | Number of Grids | Calculated Efficiency (%) | Rated Efficiency (%) | Relative (%) |
---|---|---|---|---|
ⅰ | 7,860,000 | 82.67 | 91.79 | −9.94 |
ⅱ | 10,210,000 | 89.76 | 91.79 | −2.21 |
ⅲ | 12,120,000 | 91.33 | 91.79 | −0.50 |
ⅳ | 14,030,000 | 91.59 | 91.79 | −0.22 |
Operating Conditions | Direction | Calculated Maximum Value (N) | Measured Value | Early Warning Value |
---|---|---|---|---|
PY0 | z | 2003 | Vibration 5 μm | 30 μm |
r | 4954 | Oscillation 352 μm | 400 μm | |
τ | −2,912,600 | Efficiency 91.79% | ||
PY− | z | 5588 | Vibration 14 μm | 30 μm |
r | 3457 | Oscillation 273 μm | 400 μm | |
τ | −2,903,990 | Efficiency 91.46% | ||
PY+ | z | 6555 | Vibration 17 μm | 30 μm |
r | 4331 | Oscillation 328 μm | 400 μm | |
τ | −2,906,220 | Efficiency 91.52% | ||
PYZ | z | −11,057 | Vibration 28 μm | 30 μm |
r | 3705 | Oscillation 287 μm | 400 μm | |
τ | −2,901,000 | Efficiency 91.37% |
Parameters | Condition | G1 | G2 | G3 | G4 | G5 | G6 | G7 | G8 | G9 | G10 | G11 | G12 |
Average Cp | PY0 | 0.0336 | 0.0696 | 0.1025 | 0.1197 | 0.0814 | 0.042 | 0.0143 | 0.0352 | 0.0361 | 0.117 | 0.0141 | 0.1023 |
PY− | 0.0425 | 0.0774 | 0.1065 | 0.1248 | 0.0971 | 0.0474 | 0.0807 | 0.0426 | |||||
PY+ | 0.0751 | 0.0831 | 0.1089 | 0.1281 | 0.1011 | 0.0527 | 0.0849 | 0.0466 | |||||
PYZ | 0.0226 | 0.0721 | 0.1026 | 0.1184 | 0.0889 | 0.0402 | 0.1049 | 0.0633 | 0.0911 | 0.1324 | 0.1172 | 0.116 | |
ΔH/H (%) | PY0 | 7.77 | 10.87 | 18.41 | 21.61 | 19.11 | 13.19 | 9.71 | 6.3 | 17.01 | 24.05 | 19.72 | 18.58 |
PY− | 9.67 | 12.08 | 19.06 | 23.55 | 21.47 | 15.02 | 14.81 | 7.29 | |||||
PY+ | 14.16 | 13.65 | 19.28 | 24.04 | 22.53 | 16.7 | 15.47 | 7.76 | |||||
PYZ | 5.80 | 9.89 | 19.28 | 23.59 | 21.18 | 14.22 | 21.24 | 14.12 | 17.69 | 25.19 | 24.36 | 20.52 | |
Parameters | Condition | G13 | F1 | F2 | F3 | F4 | F5 | F6 | F7 | B1 | B2 | B3 | |
Average Cp | PY0 | 0.0811 | 0.0369 | 0.0413 | 0.0560 | 0.1181 | 0.0322 | −0.0003 | 0.0002 | −0.0171 | −0.0043 | −0.0004 | |
PY− | 0.0458 | 0.0456 | 0.0942 | 0.1208 | 0.0413 | −0.0005 | 0.0004 | −0.0226 | −0.0061 | −0.0005 | |||
PY+ | 0.0469 | 0.0473 | 0.0987 | 0.1231 | 0.0444 | −0.0006 | 0.0005 | −0.0256 | −0.0067 | −0.0006 | |||
PYZ | 0.1012 | 0.0700 | 0.0493 | 0.0958 | 0.1147 | 0.0448 | −0.0002 | 0.0004 | −0.0412 | −0.0084 | −0.0005 | ||
ΔH/H (%) | PY0 | 13.18 | 22.78 | 18.38 | 21.04 | 26.12 | 25.87 | 0.27 | 0.41 | 21.58 | 9.03 | 0.26 | |
PY− | 24.63 | 19.72 | 23.91 | 28.6 | 29.45 | 0.45 | 0.54 | 24.93 | 12.58 | 0.37 | |||
PY+ | 24.83 | 20.04 | 25.9 | 29.5 | 29.95 | 0.67 | 0.7 | 25.62 | 13.25 | 0.57 | |||
PYZ | 23.01 | 34.36 | 22.98 | 27.30 | 28.89 | 32.72 | 0.49 | 0.44 | 36.99 | 20.93 | 0.59 |
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Deng, H.; Song, K.; Deng, F.; Huang, Y.; Luo, T.; Zhou, Y.; Qin, B.; Zeng, Y.; Yu, Z.; Pang, J.; et al. Nozzle Jet Deviation from Bucket Pitch Circle’s Effect on the Stability and Efficiency of Pelton Turbine. Processes 2023, 11, 1342. https://doi.org/10.3390/pr11051342
Deng H, Song K, Deng F, Huang Y, Luo T, Zhou Y, Qin B, Zeng Y, Yu Z, Pang J, et al. Nozzle Jet Deviation from Bucket Pitch Circle’s Effect on the Stability and Efficiency of Pelton Turbine. Processes. 2023; 11(5):1342. https://doi.org/10.3390/pr11051342
Chicago/Turabian StyleDeng, Huiming, Ke Song, Fangxiong Deng, Yu Huang, Tao Luo, Yijin Zhou, Bei Qin, Yongzhong Zeng, Zhishun Yu, Jiayang Pang, and et al. 2023. "Nozzle Jet Deviation from Bucket Pitch Circle’s Effect on the Stability and Efficiency of Pelton Turbine" Processes 11, no. 5: 1342. https://doi.org/10.3390/pr11051342
APA StyleDeng, H., Song, K., Deng, F., Huang, Y., Luo, T., Zhou, Y., Qin, B., Zeng, Y., Yu, Z., Pang, J., & Liu, X. (2023). Nozzle Jet Deviation from Bucket Pitch Circle’s Effect on the Stability and Efficiency of Pelton Turbine. Processes, 11(5), 1342. https://doi.org/10.3390/pr11051342