Combined-hole film cooling with the application of double flow control devices

In the modern gas turbine, film cooling system was applied to the turbine blades to provide thermal protection from extreme turbine inlet temperatures. Recent literature discovers that adding the double flow control device (DFCD) and combining two cylindrical holes (combinedhole) are the ways to fur...

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Main Authors: Hassan Haswira, Abdullah Kamil
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201713500003
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spelling doaj-5e022c3ae84646aab5e4e4bf1964bf7a2021-02-02T02:24:41ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011350000310.1051/matecconf/201713500003matecconf_icme2017_00003Combined-hole film cooling with the application of double flow control devicesHassan HaswiraAbdullah KamilIn the modern gas turbine, film cooling system was applied to the turbine blades to provide thermal protection from extreme turbine inlet temperatures. Recent literature discovers that adding the double flow control device (DFCD) and combining two cylindrical holes (combinedhole) are the ways to further enhance the film cooling performances. In the present simulation work, the influence of DFCD on the combined-hole film cooling was investigated at different blowing ratios. The comparison between two different computational domains of combined-hole film cooling with and without DFCD was further discussed in the present work. The results show that increase the blowing ratio, M rise the overall performance of combined-hole film cooling with and without DFCD. Based on the different computational domain, combined-hole with DFCD has better lateral spread at M = 0.5 and M = 0.75 in comparison with the combined-hole without DFCD. However, due to large counter clockwise vortex produced by the combined-hole with DFCD, unsymmetrical film cooling coverage was formed along the streamwise direction at M = 1.0 and M =1.5. As the conclusion, combined-hole film cooling with DFCD has better performance at M = 0.5 and M = 0.75 while combined-hole film cooling without DFCD has better performance at high blowing ratio of M = 1.0 and M = 1.5.https://doi.org/10.1051/matecconf/201713500003
collection DOAJ
language English
format Article
sources DOAJ
author Hassan Haswira
Abdullah Kamil
spellingShingle Hassan Haswira
Abdullah Kamil
Combined-hole film cooling with the application of double flow control devices
MATEC Web of Conferences
author_facet Hassan Haswira
Abdullah Kamil
author_sort Hassan Haswira
title Combined-hole film cooling with the application of double flow control devices
title_short Combined-hole film cooling with the application of double flow control devices
title_full Combined-hole film cooling with the application of double flow control devices
title_fullStr Combined-hole film cooling with the application of double flow control devices
title_full_unstemmed Combined-hole film cooling with the application of double flow control devices
title_sort combined-hole film cooling with the application of double flow control devices
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2017-01-01
description In the modern gas turbine, film cooling system was applied to the turbine blades to provide thermal protection from extreme turbine inlet temperatures. Recent literature discovers that adding the double flow control device (DFCD) and combining two cylindrical holes (combinedhole) are the ways to further enhance the film cooling performances. In the present simulation work, the influence of DFCD on the combined-hole film cooling was investigated at different blowing ratios. The comparison between two different computational domains of combined-hole film cooling with and without DFCD was further discussed in the present work. The results show that increase the blowing ratio, M rise the overall performance of combined-hole film cooling with and without DFCD. Based on the different computational domain, combined-hole with DFCD has better lateral spread at M = 0.5 and M = 0.75 in comparison with the combined-hole without DFCD. However, due to large counter clockwise vortex produced by the combined-hole with DFCD, unsymmetrical film cooling coverage was formed along the streamwise direction at M = 1.0 and M =1.5. As the conclusion, combined-hole film cooling with DFCD has better performance at M = 0.5 and M = 0.75 while combined-hole film cooling without DFCD has better performance at high blowing ratio of M = 1.0 and M = 1.5.
url https://doi.org/10.1051/matecconf/201713500003
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AT abdullahkamil combinedholefilmcoolingwiththeapplicationofdoubleflowcontroldevices
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