Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades

To meet the challenges of increased thermal loads and performance demands on aero-engine turbine blades, more advanced cooling techniques are required. This study used a modification of the well-known Goldstein equation to predict film effectiveness for an individual film cooling hole and applied th...

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Main Authors: Matthew Courtis, Alexander Murray, Ben Coulton, Peter Ireland, Ignacio Mayo
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:International Journal of Turbomachinery, Propulsion and Power
Subjects:
Online Access:https://www.mdpi.com/2504-186X/6/3/37
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spelling doaj-6db27af07274425eadcc8661dec1fadc2021-09-26T00:26:07ZengMDPI AGInternational Journal of Turbomachinery, Propulsion and Power2504-186X2021-08-016373710.3390/ijtpp6030037Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine BladesMatthew Courtis0Alexander Murray1Ben Coulton2Peter Ireland3Ignacio Mayo4Oxford Thermofluids Institute, University of Oxford, Oxford OX2 0ES, UKOxford Thermofluids Institute, University of Oxford, Oxford OX2 0ES, UKOxford Thermofluids Institute, University of Oxford, Oxford OX2 0ES, UKOxford Thermofluids Institute, University of Oxford, Oxford OX2 0ES, UKRolls-Royce PLC, Derby DE24 8BJ, UKTo meet the challenges of increased thermal loads and performance demands on aero-engine turbine blades, more advanced cooling techniques are required. This study used a modification of the well-known Goldstein equation to predict film effectiveness for an individual film cooling hole and applied the Sellers’ superposition method to apply these films across effusion-cooled configurations. In doing so, it tackles a relatively unchallenged problem of film holes in close spanwise proximity. An experimental set-up utilised infrared cameras to assess the film effectiveness of nine geometries of varying spanwise and streamwise spacings. Higher porosity led to increased thermal protection, and the spanwise spacing had the most profound impact, with film effectiveness approaching 0.9. Additionally, greater uniformity in the spanwise direction was observed. The modified Goldstein-Sellers method showed good agreement with experimental results although lateral mixing was underestimated. This method represents a tool that could be easily implemented in the industry for rapid assessment of novel cooling geometries.https://www.mdpi.com/2504-186X/6/3/37gas turbineeffusion coolingheat transferturbine coolingsuperposition
collection DOAJ
language English
format Article
sources DOAJ
author Matthew Courtis
Alexander Murray
Ben Coulton
Peter Ireland
Ignacio Mayo
spellingShingle Matthew Courtis
Alexander Murray
Ben Coulton
Peter Ireland
Ignacio Mayo
Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
International Journal of Turbomachinery, Propulsion and Power
gas turbine
effusion cooling
heat transfer
turbine cooling
superposition
author_facet Matthew Courtis
Alexander Murray
Ben Coulton
Peter Ireland
Ignacio Mayo
author_sort Matthew Courtis
title Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
title_short Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
title_full Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
title_fullStr Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
title_full_unstemmed Influence of Spanwise and Streamwise Film Hole Spacing on Adiabatic Film Effectiveness for Effusion-Cooled Gas Turbine Blades
title_sort influence of spanwise and streamwise film hole spacing on adiabatic film effectiveness for effusion-cooled gas turbine blades
publisher MDPI AG
series International Journal of Turbomachinery, Propulsion and Power
issn 2504-186X
publishDate 2021-08-01
description To meet the challenges of increased thermal loads and performance demands on aero-engine turbine blades, more advanced cooling techniques are required. This study used a modification of the well-known Goldstein equation to predict film effectiveness for an individual film cooling hole and applied the Sellers’ superposition method to apply these films across effusion-cooled configurations. In doing so, it tackles a relatively unchallenged problem of film holes in close spanwise proximity. An experimental set-up utilised infrared cameras to assess the film effectiveness of nine geometries of varying spanwise and streamwise spacings. Higher porosity led to increased thermal protection, and the spanwise spacing had the most profound impact, with film effectiveness approaching 0.9. Additionally, greater uniformity in the spanwise direction was observed. The modified Goldstein-Sellers method showed good agreement with experimental results although lateral mixing was underestimated. This method represents a tool that could be easily implemented in the industry for rapid assessment of novel cooling geometries.
topic gas turbine
effusion cooling
heat transfer
turbine cooling
superposition
url https://www.mdpi.com/2504-186X/6/3/37
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