The Effect of the Purge–Mainstream Density Ratio on Rim Seal Fluid Mechanics †
Abstract
1. Introduction
Studies of Ingress with Non-Unity Density Ratios
2. Methodology
2.1. Experimental Facility
2.2. Instrumentation
2.3. Salient Parameters
3. Effect of Density on Rim Seal Fluid Mechanics
3.1. Pressure and Swirl
3.2. Species Concentration
3.3. Spectral Analysis
4. Conclusions
- In the outer wheel-space, increasing the density ratio promotes earlier suppression of the inviscid rotating core, and sealing effectiveness rises in accordance. In the inner wheel-space, the levels of swirl and effectiveness are largely independent of the density ratio.
- The relative effect of density upon sealing effectiveness is amplified at intermediate levels of (); this is most significant at lower values of as the magnitude of the density ratio increases.
- The spectral distribution of non-dimensional unsteadiness, , identified two distinct harmonic intervals: a low-frequency spectral band, which was suppressed as the density ratio was increased; and a high-frequency band associated with the blade. The former demonstrated a causal link between unsteadiness and ingress, which was maintained for all density ratios.
- The integral of —which represents the energy content at large scales ()—decreased with the density ratio. This apparent reduction in unsteadiness is in accordance with the behaviour predicted by pre-published theoretical models.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Uncertainty Analysis
| Scale Range (Units) | Instrument | ||
|---|---|---|---|
| p | Full Scale | 1 kPa | PR3202V10-S0019-AB-00-00 |
| , | ±35 Pa | 35 kPa | 5 PSI-D-HGRADE-MV |
| ±50 Pa | 75 to 125 kPa | Pi642P-.75-1.25BARA-0.1 | |
| ±0.1% Full Scale | 170 kPa absolute | XCQ-062-1G | |
| , | ±0.5 K | 3 to 1530 K | K-type Thermocouple |
| ±1 rpm | 6000 rpm | 34kW AC Dynamometer | |
| Read, Full Scale | 3.0 kg/min | MCR-1500SLPM-D | |
| Read, Full Scale | 0.07164 kg/s | F-206AI-ABD-00V | |
| Read, Full Scale | 1.7 kg/s | 780-NAA-F9-EN2-P2-V3-DD-0 | |
| , , | Full Scale | 100 % by volume | 9120MG Multi Gas Analyser |
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| Parameters | Value |
|---|---|
| Disc Speed [rpm] | 900 |
| Rotational Reynolds Number, | |
| Axial Reynolds Number, | |
| Flow Coefficient, | 0.38 |
| Vane Exit Mach Number, Ma | 0.12 |
| Non-Dimensional Sealing Flow Rate, | 0.00–0.13 |
| Density Ratio, DR | 1.00–1.54 |
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© 2025 by the authors. Published by MDPI on behalf of the EUROTURBO. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY-NC-ND) license (https://creativecommons.org/licenses/by-nc-nd/4.0/).
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Boldero, J.S.; Vella, S.; Tang, H.; Scobie, J.A.; Lock, G.D.; Sangan, C.M. The Effect of the Purge–Mainstream Density Ratio on Rim Seal Fluid Mechanics. Int. J. Turbomach. Propuls. Power 2025, 10, 46. https://doi.org/10.3390/ijtpp10040046
Boldero JS, Vella S, Tang H, Scobie JA, Lock GD, Sangan CM. The Effect of the Purge–Mainstream Density Ratio on Rim Seal Fluid Mechanics. International Journal of Turbomachinery, Propulsion and Power. 2025; 10(4):46. https://doi.org/10.3390/ijtpp10040046
Chicago/Turabian StyleBoldero, Jason S., Simon Vella, Hui Tang, James A. Scobie, Gary D. Lock, and Carl M. Sangan. 2025. "The Effect of the Purge–Mainstream Density Ratio on Rim Seal Fluid Mechanics" International Journal of Turbomachinery, Propulsion and Power 10, no. 4: 46. https://doi.org/10.3390/ijtpp10040046
APA StyleBoldero, J. S., Vella, S., Tang, H., Scobie, J. A., Lock, G. D., & Sangan, C. M. (2025). The Effect of the Purge–Mainstream Density Ratio on Rim Seal Fluid Mechanics. International Journal of Turbomachinery, Propulsion and Power, 10(4), 46. https://doi.org/10.3390/ijtpp10040046

