Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors

This work presents a novel swirler with variable blade configuration for gas turbine combustors and industrial burners. The flow dynamics downstream the swirler was explored using Large Eddy Simulation (LES). The resolved turbulence kinetic energy in the region where the flow exhibits the main flow...

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Main Authors: Eldrainy, Yehia A., Saqr, Khalid M., Aly, Hossam S., Mat Lazim, Tholudin, Mohd. Jaafar, Mohammad Nazri
Format: Article
Published: Elsevier Limited 2011
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Online Access:http://eprints.utm.my/id/eprint/29228/
http://dx.doi.org/10.1016/j.icheatmasstransfer.2011.05.017
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.292282019-03-17T03:03:32Z http://eprints.utm.my/id/eprint/29228/ Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors Eldrainy, Yehia A. Saqr, Khalid M. Aly, Hossam S. Mat Lazim, Tholudin Mohd. Jaafar, Mohammad Nazri TJ Mechanical engineering and machinery This work presents a novel swirler with variable blade configuration for gas turbine combustors and industrial burners. The flow dynamics downstream the swirler was explored using Large Eddy Simulation (LES). The resolved turbulence kinetic energy in the region where the flow exhibits the main flow phenomena was well above 80% of the total turbulent kinetic energy of the flow. It was evidently shown that the new swirler produces a central recirculation zone and a Rankine vortex structure which are necessary for swirl flame stabilization. Two Reynolds-averaged NavierStokes (RANS) simulation cases utilizing the standard and realizable k-ε turbulence models were also conducted for two objectives. The first is to demonstrate the validity of RANS/eddy-viscosity models in predicting the main characteristics of swirling flows with comparison to the LES results. The second objective is to comparatively investigate the flow features downstream the new swirler in both co-rotating and counter-rotating blade configurations. The results show that the counter-rotating configuration produces higher turbulence kinetic energy and more compact recirculation zone compared to the co-rotating configuration. Elsevier Limited 2011-10 Article PeerReviewed Eldrainy, Yehia A. and Saqr, Khalid M. and Aly, Hossam S. and Mat Lazim, Tholudin and Mohd. Jaafar, Mohammad Nazri (2011) Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors. International Communications in Heat and Mass Transfer, 38 (8). pp. 1104-1109. ISSN 0735-1933 http://dx.doi.org/10.1016/j.icheatmasstransfer.2011.05.017 DOI:10.1016/j.icheatmasstransfer.2011.05.017
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Eldrainy, Yehia A.
Saqr, Khalid M.
Aly, Hossam S.
Mat Lazim, Tholudin
Mohd. Jaafar, Mohammad Nazri
Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
description This work presents a novel swirler with variable blade configuration for gas turbine combustors and industrial burners. The flow dynamics downstream the swirler was explored using Large Eddy Simulation (LES). The resolved turbulence kinetic energy in the region where the flow exhibits the main flow phenomena was well above 80% of the total turbulent kinetic energy of the flow. It was evidently shown that the new swirler produces a central recirculation zone and a Rankine vortex structure which are necessary for swirl flame stabilization. Two Reynolds-averaged NavierStokes (RANS) simulation cases utilizing the standard and realizable k-ε turbulence models were also conducted for two objectives. The first is to demonstrate the validity of RANS/eddy-viscosity models in predicting the main characteristics of swirling flows with comparison to the LES results. The second objective is to comparatively investigate the flow features downstream the new swirler in both co-rotating and counter-rotating blade configurations. The results show that the counter-rotating configuration produces higher turbulence kinetic energy and more compact recirculation zone compared to the co-rotating configuration.
format Article
author Eldrainy, Yehia A.
Saqr, Khalid M.
Aly, Hossam S.
Mat Lazim, Tholudin
Mohd. Jaafar, Mohammad Nazri
author_facet Eldrainy, Yehia A.
Saqr, Khalid M.
Aly, Hossam S.
Mat Lazim, Tholudin
Mohd. Jaafar, Mohammad Nazri
author_sort Eldrainy, Yehia A.
title Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
title_short Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
title_full Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
title_fullStr Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
title_full_unstemmed Large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
title_sort large eddy simulation and preliminary modeling of the flow downstream a variable geometry swirler for gas turbine combustors
publisher Elsevier Limited
publishDate 2011
url http://eprints.utm.my/id/eprint/29228/
http://dx.doi.org/10.1016/j.icheatmasstransfer.2011.05.017
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