Effect of Tip Gap Size on the Performance of an Axial Compressor Stage with and without Active Flow Control †
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Facility and Active Flow Control System
2.2. Numerical Set-Up
2.2.1. Presentation of the 2/10 Configurations
2.2.2. General Parameters
3. Results and Discussion
3.1. Reference without Control: Baseline Performance Assessment
3.1.1. Specific Operating Conditions for Ratio R = 0.6% and R = 2.4%
3.1.2. Results from Nominal to Last Stable Conditions at Ratio R = 0.6% and R = 2.4%
3.2. Performance of Flow Control at Different Tip Gap Sizes
3.3. Impact of the Injection Control Parameters
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
A | Annulus area at the rotor inlet () |
Injection angle () | |
Relative blowing angle () | |
Density () | |
Static pressure variation (Pa) | |
Flow coefficient: (-) | |
Mass flow rate (kg/s) | |
Rotational velocity (rpm) | |
Pressure coefficient: (-) | |
P | Nominal compressor power (W) |
Static, total pressure (Pa) | |
PB | Power balance (%) |
Global injected mass flow rate (kg/s) | |
RANS | Reynolds-averaged Navier–Stokes |
R | Ratio (tip gap size over the axial chord) (%) |
SBC | Single-blade channel |
SMI | Stall margin improvement (%) |
SM | Stall margin (%) |
Total temperature (K) | |
U | Rotor tip velocity (m/s) |
Jet velocity scaled (-) |
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Upstream | - Subsonic inlet condition with prescribed total pressure |
- Axial flow direction, = 101,325 Pa, = 288.15 K | |
Blades, casing, hub | - Adiabatic wall condition |
- Fixed wall condition for casing and a part of the hub | |
- Mobile wall condition for hub and blades | |
Downstream | - Subsonic outlet condition with radial equilibrium using a valve law on static pressure |
Inlet of the injector | - Subsonic inlet condition with prescribed mass flow rate, |
- Flow direction normal to boundary, = 288 K | |
Injector walls | - Adiabatic wall conditions |
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Rannou, C.; Marty, J.; Tanguy, G.; Dazin, A. Effect of Tip Gap Size on the Performance of an Axial Compressor Stage with and without Active Flow Control. Int. J. Turbomach. Propuls. Power 2023, 8, 30. https://doi.org/10.3390/ijtpp8030030
Rannou C, Marty J, Tanguy G, Dazin A. Effect of Tip Gap Size on the Performance of an Axial Compressor Stage with and without Active Flow Control. International Journal of Turbomachinery, Propulsion and Power. 2023; 8(3):30. https://doi.org/10.3390/ijtpp8030030
Chicago/Turabian StyleRannou, Clémence, Julien Marty, Geoffrey Tanguy, and Antoine Dazin. 2023. "Effect of Tip Gap Size on the Performance of an Axial Compressor Stage with and without Active Flow Control" International Journal of Turbomachinery, Propulsion and Power 8, no. 3: 30. https://doi.org/10.3390/ijtpp8030030
APA StyleRannou, C., Marty, J., Tanguy, G., & Dazin, A. (2023). Effect of Tip Gap Size on the Performance of an Axial Compressor Stage with and without Active Flow Control. International Journal of Turbomachinery, Propulsion and Power, 8(3), 30. https://doi.org/10.3390/ijtpp8030030