Numerical study of hydrogen mild combustion

In this article a combustor burning hydrogen and air in mild regime is numerically studied by means of computational fluid dynamic simulations. All the numerical results show a good agreement with experimental data. It is seen that the flow configuration is characterized by strong exhaust gas recirc...

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Main Authors: Mollica Enrico, Giacomazzi Eugenio, di Marco Alessandro
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2009-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903059M.pdf
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spelling doaj-ef1341dc48584296bee60d3e5266efe22021-01-02T08:11:08ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632009-01-01133596710.2298/TSCI0903059M0354-98360903059MNumerical study of hydrogen mild combustionMollica Enrico0Giacomazzi Eugenio1di Marco Alessandro2Department of Mechanics Engineering, University of Rome 'Roma Tre' Rome, ItalyENEA-C.R. Casaccia, Sec. ENE-IMP, S.P., Rome, ItalyDepartment of Mechanics Engineering, University of Rome 'Roma Tre' Rome, ItalyIn this article a combustor burning hydrogen and air in mild regime is numerically studied by means of computational fluid dynamic simulations. All the numerical results show a good agreement with experimental data. It is seen that the flow configuration is characterized by strong exhaust gas recirculation with high air preheating temperature. As a consequence, the reaction zone is found to be characteristically broad and the temperature and concentrations fields are sufficiently homogeneous and uniform, leading to a strong abatement of nitric oxide emissions. It is also observed that the reduction of thermal gradients is achieved mainly through the extension of combustion in the whole volume of the combustion chamber, so that a flame front no longer exists ('flameless oxidation'). The effect of preheating, further dilution provided by inner recirculation and of radiation model for the present hydrogen/air mild burner are analyzed.http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903059M.pdfhydrogenflameless combustioncomputational fluid dynamics
collection DOAJ
language English
format Article
sources DOAJ
author Mollica Enrico
Giacomazzi Eugenio
di Marco Alessandro
spellingShingle Mollica Enrico
Giacomazzi Eugenio
di Marco Alessandro
Numerical study of hydrogen mild combustion
Thermal Science
hydrogen
flameless combustion
computational fluid dynamics
author_facet Mollica Enrico
Giacomazzi Eugenio
di Marco Alessandro
author_sort Mollica Enrico
title Numerical study of hydrogen mild combustion
title_short Numerical study of hydrogen mild combustion
title_full Numerical study of hydrogen mild combustion
title_fullStr Numerical study of hydrogen mild combustion
title_full_unstemmed Numerical study of hydrogen mild combustion
title_sort numerical study of hydrogen mild combustion
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2009-01-01
description In this article a combustor burning hydrogen and air in mild regime is numerically studied by means of computational fluid dynamic simulations. All the numerical results show a good agreement with experimental data. It is seen that the flow configuration is characterized by strong exhaust gas recirculation with high air preheating temperature. As a consequence, the reaction zone is found to be characteristically broad and the temperature and concentrations fields are sufficiently homogeneous and uniform, leading to a strong abatement of nitric oxide emissions. It is also observed that the reduction of thermal gradients is achieved mainly through the extension of combustion in the whole volume of the combustion chamber, so that a flame front no longer exists ('flameless oxidation'). The effect of preheating, further dilution provided by inner recirculation and of radiation model for the present hydrogen/air mild burner are analyzed.
topic hydrogen
flameless combustion
computational fluid dynamics
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2009/0354-98360903059M.pdf
work_keys_str_mv AT mollicaenrico numericalstudyofhydrogenmildcombustion
AT giacomazzieugenio numericalstudyofhydrogenmildcombustion
AT dimarcoalessandro numericalstudyofhydrogenmildcombustion
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