Influence of Hot Streak and Swirl Clocking Position on Aerothermal Performance of High-Pressure Turbine
Abstract
:1. Introduction
2. Numerical Methodology
2.1. Computational Model and Boundary Conditions
2.2. Numerical Verification
2.3. Grid and Grid Independence Verification
3. Results and Discussion
3.1. Influence of Inlet Non-Uniformity on the Aerothermal Performance of NGV
3.1.1. Migration of Hot and Cold Fluids in the Vane Passage
3.1.2. Temperature Distribution on NGV
3.1.3. Heat Transfer on NGV Surfaces
3.2. Influence of Inlet Non-Uniformities on the Aerothermal Performance of the Rotor Blade
3.2.1. Migration of Hot and Cold Fluids within the Rotor
3.2.2. Temperature Distribution on the Blade Surface
3.2.3. Heat Transfer on the Blade Surface
3.3. Effect of Inlet Inhomogeneity on Turbine Efficiency
4. Conclusions
- (1)
- Different clocking positions and swirl directions change the incident angle on the vane surface, thereby generating different pressure gradients on the vane surface. The pressure gradient is upward for positive swirl and opposite for negative swirl. With the positive and negative HV at the shroud and hub, the HS of the positive swirl is located in the upper-span of the passage, and the negative swirl is located in the lower portion. Due to the difference in clocking positions, HS appeared on both the left and right sides of the NGV1 passage in LE cases. In the mid cases, only NGV1 and NGV2 channels showed HS.
- (2)
- Due to the change in the incident angle of the blade, the stagnation line of the NGV in the positive swirling flow deviates to the PS at the shroud and to the SS at the hub. The stagnation line for negative swirl is in the opposite direction. As shown by the migration of the HS within the passage, a high-temperature region appears at the shroud of NGV1 in Pos LE, and a negative swirling flow is at the hub. When the HS and swirl are facing the mid passage, due to the direction of the swirl, the temperature of the NGV1 shroud and the temperature of the NGV2 hub are higher, and the reasons are the same for the negative swirl.
- (3)
- Based on the influence of swirl direction and different clocking positions on the distribution of vane streamlines, the heat transfer on the vane surface is also quite different. In the PS, due to the different aggregation positions of the streamlines, the low Nu regions are different. At SS, there is a boundary layer transition at LE, so Nu is lower. Due to the different swirling directions and spatial positions, the streamlines that allow PV and NGV1 to gather appear in different regions. Therefore, the low-Nu position of NGV1 SS is different. Less affected by the swirl, the Nu of NGV2 is relatively similar. Different from the positive swirl, the downwash of the NGV2 SS streamline under the influence of the negative swirl is relatively moderate, so the transition point is closer to LE.
- (4)
- The strong interference between the rotor and the stator makes the flow characteristics of the rotor transient. In the passage, the HS transferred from the stator is distributed in different positions due to the various clocking positions and swirl directions. Under the dominant effect of the secondary flow in the passage and the auxiliary effect of the residual swirl, the HS has a significant migration. However, in LE cases, the migration of the HS is less affected by the secondary flow and residual swirl due to the interference of the rotor. In the SS, due to the formation of PV, the discrepancy of temperature distribution in SS is small. However, in the PS, due to the different positions of HS transferred upstream, the temperature in the upper-span of the positive swirl cases is higher, and the temperature in the lower-span of the negative swirl cases is higher.
- (5)
- Based on the fierce interference of the rotor and the stator, the heat transfer distribution of the rotor blade is also relatively similar. There is only a slight difference due to streamline distribution. In order to further explore the optimal performance of the turbine under HS and swirl flow, by comparing the turbine efficiency in different cases, it is known that Pos LE is the most conducive to the operation of the turbine.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Blade axial chord, m | |
h* | total enthalpy |
Ma | Mach number |
Nu | Non-dimensional wall distance |
Wall heat flux, W/m2 | |
SN | Swirl intensify |
Wall temperature, K | |
Adiabatic wall total temperature, K | |
y+ | Non-dimensional wall distance |
Ad | Adiabatic wall |
HS | Hot streak |
Iso | Isothermal wall |
LE | Leading edge |
NGV | Nozzle guide vane |
PS | Pressure side |
SS | Suction side |
SW | Swirl |
TE | Trailing edge |
Thermal conductivity, W/(m·K) | |
Dynamic Viscosity, Pa·s | |
total-to-total turbine efficiency |
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Case No. | Inlet BC | Thermal BC |
---|---|---|
1 | Uniform | Ad/Iso |
2 | Pos Mid | Ad/Iso |
3 | Pos LE | Ad/Iso |
4 | Neg Mid | Ad/Iso |
5 | Neg LE | Ad/Iso |
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Yang, X.; Cai, H.; Kang, J.; Liu, W.; Li, P. Influence of Hot Streak and Swirl Clocking Position on Aerothermal Performance of High-Pressure Turbine. Aerospace 2023, 10, 934. https://doi.org/10.3390/aerospace10110934
Yang X, Cai H, Kang J, Liu W, Li P. Influence of Hot Streak and Swirl Clocking Position on Aerothermal Performance of High-Pressure Turbine. Aerospace. 2023; 10(11):934. https://doi.org/10.3390/aerospace10110934
Chicago/Turabian StyleYang, Xiaojun, Hongming Cai, Jinhui Kang, Wenbo Liu, and Peiran Li. 2023. "Influence of Hot Streak and Swirl Clocking Position on Aerothermal Performance of High-Pressure Turbine" Aerospace 10, no. 11: 934. https://doi.org/10.3390/aerospace10110934
APA StyleYang, X., Cai, H., Kang, J., Liu, W., & Li, P. (2023). Influence of Hot Streak and Swirl Clocking Position on Aerothermal Performance of High-Pressure Turbine. Aerospace, 10(11), 934. https://doi.org/10.3390/aerospace10110934