Influence of Load Variation on the Flow Field and Stability of the Francis Turbine
Abstract
:1. Introduction
2. Mathematical Model
2.1. Fundamental Governing Equation
2.2. Turbulence Model
3. Construction of Geometric Model and Division of Mesh
3.1. Three-Dimensional Geometrical Model
3.2. Grid Division and Independence Verification
3.3. Boundary Condition
4. Analysis of Calculation Results
4.1. Internal Flow Field Analysis
4.1.1. Vaneless Space
4.1.2. Runner
4.1.3. Draft Tube
4.2. Pressure Pulsation Analysis
4.2.1. Monitoring Point Setting
4.2.2. Vaneless Space
4.2.3. Runner
4.2.4. Draft Tube
5. Analysis of the Test Results
5.1. Pressure Pulsation Within the Vaneless Region
5.2. Pressure Pulsation of the Draft Tube
6. Conclusions
- The draft tube accounts for the majority of the turbine’s energy dissipation, ranging from about 72.7% to 95.9%. The peak dissipation occurs at the 45% load condition. The energy loss between the vaneless region and the runner is mainly due to backflow and eddy currents caused by flow separation. At full load (100%), the energy loss in the vaneless region and the runner exceeds that observed at 45% and 60% loads.
- The pressure fluctuations caused by the vortex belt are the primary contributors to the unstable operation of the unit. At 45% and 100% load conditions, the draft tube is mainly affected by dynamic and static interference, rotor-generated single and double frequencies, and low-frequency vortex belt oscillations. Under 60% load, the pressure pulsation in the draft tube is predominantly driven by the vortex band at a frequency of 0.2 fn, with its amplitude notably higher than that observed at 45% and 100% load conditions. Measures can be taken to reduce or eliminate hydraulic losses, such as introducing air into the draft tube, modifying the water flow within it, or controlling the eccentricity of the vortex belt.
- The relative amplitude of pressure pulsation in the draft tube ranged from 0.5% to 5.5%, markedly higher than that observed in the vaneless region. Additionally, the amplitude was more pronounced under partial load conditions, consistent with the findings from numerical simulations.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
SST | Shear Stress Transport |
CFD | Computational Fluid Dynamics |
DES | Detached-Eddy Simulation |
BEP | Best Efficiency Point |
SG | Stay vane to Guide vane |
GR | Guide vane to Runner |
R | Runner |
DT | Draft Tube |
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Parameter | Value | Parameter | Value |
---|---|---|---|
Rated Head Hr (m) | 159.3 | Number of runner blades | 15 |
Rated output P (MW) | 90 | Number of stay vanes | 20 |
Rated Speed nr (r/min) | 272.7 | Number of guide vanes | 20 |
Rated Discharge Qr (m3/s) | 62.7 | Runner inlet diameter D1 (mm) | 2975 |
Suction Height Hs (m) | −3 | Runner outlet diameter D2 (mm) | 2472 |
45% | 60% | 100% | |
---|---|---|---|
Vaneless | The entropy production at the trailing edge of the guide vane is minimal. | The entropy production around the stay vane is higher than that of the other two operating conditions | The entropy production range of the trailing edge of the guide vane is the largest, and the two ends are higher than the middle |
Runner | There is almost no high-entropy production area in the tail of the blades | Span = 0.9 The entropy yield range of the blade tail was the largest | |
Draft tube | High-entropy production areas occur at both ends of the proximal wall | High entropy production areas occur at both ends of the proximal wall, and the range of elbow segments is the largest | The high-entropy production zones are symmetrically distributed about the centerline of the straight conical section. |
45% | 60% | 100% | |
---|---|---|---|
Vaneless | A low-frequency pressure ripple of 0.2 fn is observed, with the largest amplitude of pressure ripple resulting from dynamic and static interference. | ||
Runner | A low-frequency pressure pulsation of 0.8 fn occurs | The amplitude of pressure fluctuation caused by dynamic and static interference is the largest | |
Draft tube | The amplitude of the pressure ripple and the extent of the vortex zone are clearly observable. | The pressure ripples caused by the vortex belt exhibit the largest amplitude. | The maximum value is the amplitude of the pressure ripple due to the dynamic and static interference |
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Li, S.; Pang, J.; Dan, C.; Xiang, W.; Yi, X.; Liu, X. Influence of Load Variation on the Flow Field and Stability of the Francis Turbine. J. Mar. Sci. Eng. 2025, 13, 316. https://doi.org/10.3390/jmse13020316
Li S, Pang J, Dan C, Xiang W, Yi X, Liu X. Influence of Load Variation on the Flow Field and Stability of the Francis Turbine. Journal of Marine Science and Engineering. 2025; 13(2):316. https://doi.org/10.3390/jmse13020316
Chicago/Turabian StyleLi, Shenhui, Jiayang Pang, Chengmei Dan, Wenping Xiang, Xutao Yi, and Xiaobing Liu. 2025. "Influence of Load Variation on the Flow Field and Stability of the Francis Turbine" Journal of Marine Science and Engineering 13, no. 2: 316. https://doi.org/10.3390/jmse13020316
APA StyleLi, S., Pang, J., Dan, C., Xiang, W., Yi, X., & Liu, X. (2025). Influence of Load Variation on the Flow Field and Stability of the Francis Turbine. Journal of Marine Science and Engineering, 13(2), 316. https://doi.org/10.3390/jmse13020316