NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN
A turbulent non-premixed methane-air flame was studied in an axisymmetric cylindrical combustion chamber, focusing on thermal radiation effects on temperature and soot concentration fields. The simulation is based on the solution of the mass, energy, momentum and chemical species conservation equati...
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doaj-f8b52c1920da4feea101a5fe759330b72020-11-24T23:45:12ZengTaylor's UniversityJournal of Engineering Science and Technology1823-46902017-06-0112616401661NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN ANBRAHIM ZITOUNI0RACHID MECHI1HABIB FARHAT2 RACHID SAID3Laboratory of Studies of Ionized and Reactive Media, Preparatory Institute of Studies in Engineering of Monastir, Ibn El-Jazzar Street 5019 Monastir, TunisiaLaboratory of Studies of Ionized and Reactive Media, Preparatory Institute of Studies in Engineering of Monastir, Ibn El-Jazzar Street 5019 Monastir, TunisiaLaboratory of Studies of Ionized and Reactive Media, Preparatory Institute of Studies in Engineering of Monastir, Ibn El-Jazzar Street 5019 Monastir, TunisiaLaboratory of Studies of Ionized and Reactive Media, Preparatory Institute of Studies in Engineering of Monastir, Ibn El-Jazzar Street 5019 Monastir, TunisiaA turbulent non-premixed methane-air flame was studied in an axisymmetric cylindrical combustion chamber, focusing on thermal radiation effects on temperature and soot concentration fields. The simulation is based on the solution of the mass, energy, momentum and chemical species conservation equations. The turbulence and its interaction with combustion are modelled by the standard k-ε model and eddy dissipation concept, respectively. The semiempirical model of Syed is implemented to deal with soot formation and oxidation and thus ensuring the overall efficiency of the present investigation. The radiative heat transfer is surveyed, for two cases: with and without soot radiation. The numerical resolution has been achieved using the Hottel’s zonal method and the standard weighted-sum-of-gray-gases model, to predict the real gas-soot mixture radiation effect. A new concept of optical exchange gap has been recently proposed and applied here after avoiding the singularities obviously encountered in the calculation of the direct exchange areas of volume zones self-irradiance. The obtained numerical results are compared to experimental data due to Brookes and Moss. Radiation exchange is found to noticeably affect temperature and soot volume fraction predictions and slightly the mixture fraction solutions. The present paper shows that taking into account turbulent combustion-radiation interactions leads to more accurate results by comparison to available experimental data.http://jestec.taylors.edu.my/Vol%2012%20issue%206%20June%202017/12_6_15.pdfTurbulent combustionSoot radiationZonal methodOptical exchange gap (OEG)WSGG model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
BRAHIM ZITOUNI RACHID MECHI HABIB FARHAT RACHID SAID |
spellingShingle |
BRAHIM ZITOUNI RACHID MECHI HABIB FARHAT RACHID SAID NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN Journal of Engineering Science and Technology Turbulent combustion Soot radiation Zonal method Optical exchange gap (OEG) WSGG model |
author_facet |
BRAHIM ZITOUNI RACHID MECHI HABIB FARHAT RACHID SAID |
author_sort |
BRAHIM ZITOUNI |
title |
NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN |
title_short |
NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN |
title_full |
NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN |
title_fullStr |
NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN |
title_full_unstemmed |
NUMERICAL INVESTIGATION OF THE COUPLED TURBULENT COMBUSTION-RADIATION IN AN |
title_sort |
numerical investigation of the coupled turbulent combustion-radiation in an |
publisher |
Taylor's University |
series |
Journal of Engineering Science and Technology |
issn |
1823-4690 |
publishDate |
2017-06-01 |
description |
A turbulent non-premixed methane-air flame was studied in an axisymmetric cylindrical combustion chamber, focusing on thermal radiation effects on temperature and soot concentration fields. The simulation is based on the solution of the mass, energy, momentum and chemical species conservation equations. The turbulence and its interaction with combustion are modelled by
the standard k-ε model and eddy dissipation concept, respectively. The semiempirical model of Syed is implemented to deal with soot formation and oxidation and thus ensuring the overall efficiency of the present investigation. The radiative heat transfer is surveyed, for two cases: with and without soot radiation. The numerical resolution has been achieved using the Hottel’s zonal
method and the standard weighted-sum-of-gray-gases model, to predict the real gas-soot mixture radiation effect. A new concept of optical exchange gap has been recently proposed and applied here after avoiding the singularities obviously encountered in the calculation of the direct exchange areas of volume zones self-irradiance. The obtained numerical results are compared to
experimental data due to Brookes and Moss. Radiation exchange is found to noticeably affect temperature and soot volume fraction predictions and slightly the mixture fraction solutions. The present paper shows that taking into account turbulent combustion-radiation interactions leads to more accurate results by
comparison to available experimental data. |
topic |
Turbulent combustion Soot radiation Zonal method Optical exchange gap (OEG) WSGG model |
url |
http://jestec.taylors.edu.my/Vol%2012%20issue%206%20June%202017/12_6_15.pdf |
work_keys_str_mv |
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