Effect of Non-Uniform Nozzle Vane Tip Clearance on the Aerodynamic Performance of a Supersonic Variable Nozzle Turbine
Abstract
1. Introduction
2. Methods
2.1. Radial Inflow Turbine System
2.2. Numerical Method
2.3. Validation of Numerical Method
3. Results and Discussion
3.1. The Flow Losses in Nozzle Vane
3.2. The Effect of Non-Uniform Clearance on Tip Leakage Flow Pattern
3.3. The Interaction Between Tip Leakage Flow and Shock Wave
3.4. The Effect of Non-Uniform Clearance on Aerodynamic Performance of VNT
4. Conclusions
- For the rear-loaded vane profile, due to the large lateral pressure gradient on both vane sides, the SC case has the smallest leakage mass flow rate, the largest pitch-averaged Cpt at the vane outlet and the smallest flow losses among the three tip clearance cases. Meanwhile, the initial size of leakage vortex for the SC profile is the largest in leading edge region of the vane. However, the area influenced by the leakage vortex for the SC case is the smallest at the trailing edge region of the vane. The location of the leakage vortex separation in the SC case is the closest to the trailing edge of the vane. This indicates that for rear-loaded turbine vanes, designing the clearance to converge toward the trailing edge can effectively reduce the leakage flow driven by the high-pressure region at the trailing edge, thereby reducing tip clearance losses at the source. This design strategy does not require altering the vane profile or increasing manufacturing complexity, and thus offers a simple and feasible direction for clearance optimization in engineering practice.
- The shock wave pattern is significantly altered due to the influence of the tip leakage vortex. For the first (strong) shock wave, the SC case exhibits the strongest shock wave, and the influence of the tip leakage vortex on the shock wave pattern is the weakest. The location of the interaction between the shock wave and the leakage vortex in the SC case is the closest to the trailing edge. The location of the shock–vortex interaction near the trailing edge indicates that the leakage vortex maintains a relatively well-organized structure over a longer chordwise distance, thereby avoiding premature vortex breakdown and extensive mixing losses. This suggests that in engineering design, the tip leakage should be controlled as close to the leading edge as possible, so as to mitigate the interference of the leakage vortex with the downstream shock structure.
- The interaction between the shock wave and the tip leakage vortex is the primary source of the large flow losses in the nozzle vane, which dominates the losses caused by the interaction between the tip leakage flow and the main flow. This finding revises the conventional understanding that “mixing between leakage flow and mainstream dominates the losses.” For supersonic VNTs, designers should prioritize suppressing shock–vortex interaction as the core objective of performance optimization, rather than merely focusing on reducing the leakage mass flow rate. This provides a clear theoretical direction for the future development of active/passive flow control techniques.
- The non-uniform clearance can significantly affect the aerodynamic performance of the VNT. Compared with the EC case, the mass flow rate and torque in the SC case are decreased by 8.8% and 4.3%, respectively. However, the efficiency of the SC profile is 5.2% higher than the EC profile. The performance of the VNT with uniform clearance is intermediate between that of the SC and the EC profiles. The above quantitative results provide a clear performance trade-off basis for clearance selection in turbine design. The SC scheme achieves significant efficiency gains at the cost of a slight reduction in mass flow and torque, making it suitable for applications that prioritize high fuel economy or emission performance, such as automotive turbochargers. Depending on the specific operating conditions, designers can make an optimal trade-off between mass flow and efficiency.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| VNT | Variable Nozzle Turbine |
| UC | Uniform clearance |
| EC | Expanding clearance |
| SC | Shrinking clearance |
| RANS | Reynolds-averaged Navier–Stokes |
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| Parameters | Value |
|---|---|
| Impeller blade number | 10 |
| Nozzle vane number | 13 |
| Nozzle vane inlet diameter (mm) | 83.5 |
| Nozzle vane outlet diameter (mm) | 73.5 |
| Nozzle opening degree (°) | 13 |
| Parameters | Value |
|---|---|
| Cascade solidity | 1.25 |
| Cascade aspect ratio | 0.3 |
| Axial chord (mm) | 50 |
| Throat opening (mm) | 9.6 |
| Inlet vane angle (°) | 0 |
| Outlet vane angle (°) | 77 |
| Designed attack angle (°) | 0 |
| Setup angle (°) | 34.6 |
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© 2026 by the authors. Published by MDPI on behalf of the Nanjing University of Aeronautics and Astronautics (NUAA). Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Luo, Q.; Xiang, C.; Lei, X.; Liu, Z.; Zhang, Z. Effect of Non-Uniform Nozzle Vane Tip Clearance on the Aerodynamic Performance of a Supersonic Variable Nozzle Turbine. Int. J. Thermofluid Sci. Technol. 2026, 13, 4. https://doi.org/10.3390/ijtst13010004
Luo Q, Xiang C, Lei X, Liu Z, Zhang Z. Effect of Non-Uniform Nozzle Vane Tip Clearance on the Aerodynamic Performance of a Supersonic Variable Nozzle Turbine. International Journal of Thermofluid Science and Technology. 2026; 13(1):4. https://doi.org/10.3390/ijtst13010004
Chicago/Turabian StyleLuo, Qin, Cong Xiang, Xinguo Lei, Zhen Liu, and Zhichao Zhang. 2026. "Effect of Non-Uniform Nozzle Vane Tip Clearance on the Aerodynamic Performance of a Supersonic Variable Nozzle Turbine" International Journal of Thermofluid Science and Technology 13, no. 1: 4. https://doi.org/10.3390/ijtst13010004
APA StyleLuo, Q., Xiang, C., Lei, X., Liu, Z., & Zhang, Z. (2026). Effect of Non-Uniform Nozzle Vane Tip Clearance on the Aerodynamic Performance of a Supersonic Variable Nozzle Turbine. International Journal of Thermofluid Science and Technology, 13(1), 4. https://doi.org/10.3390/ijtst13010004

