Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace

Radiation is a major component of heat transfer in the modeling of furnaces. In this study, coupled radiative and conductive heat transfer problems are analyzed in complex geometries with inhomogeneous and anisotropic scattering participating media. A three-dimensional model is developed using co...

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Main Authors: Lari Khosro, Gandjalikhan Nassab Abdolreza Seyyed
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2012-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2012/0354-98361100034L.pdf
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spelling doaj-c4a20d4293b6466da64aac7473d39f8a2021-01-02T08:01:25ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362012-01-011641187120010.2298/TSCI110121034LModeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnaceLari KhosroGandjalikhan Nassab Abdolreza SeyyedRadiation is a major component of heat transfer in the modeling of furnaces. In this study, coupled radiative and conductive heat transfer problems are analyzed in complex geometries with inhomogeneous and anisotropic scattering participating media. A three-dimensional model is developed using combination of the discrete ordinates method and blocked-off-region procedure. The finite volume method has been adopted to solve the energy equation and the radiative source term in the energy equation is computed from intensities field. The accuracy of radiative conductive model is verified by comparison with benchmark solutions from the literature. As an example of engineering problems, radiative-conductive heat transfer in a furnace model with gray, inhomogeneous and anisotropic scattering media is numerically studied. The distributions of temperature and heat flux in the furnace are analyzed for different thermoradiative parameters such as conduction-radiation parameter, scattering albedo and anisotropic scattering coefficient. The numerical algorithm described is found to be fast and reliable for studying combined conductive and radiative heat transfer in three-dimensional irregular geometries.http://www.doiserbia.nb.rs/img/doi/0354-9836/2012/0354-98361100034L.pdfthree-dimensional complex geometriesradiationconductionblocked-off methoddiscrete ordinates method
collection DOAJ
language English
format Article
sources DOAJ
author Lari Khosro
Gandjalikhan Nassab Abdolreza Seyyed
spellingShingle Lari Khosro
Gandjalikhan Nassab Abdolreza Seyyed
Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
Thermal Science
three-dimensional complex geometries
radiation
conduction
blocked-off method
discrete ordinates method
author_facet Lari Khosro
Gandjalikhan Nassab Abdolreza Seyyed
author_sort Lari Khosro
title Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
title_short Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
title_full Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
title_fullStr Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
title_full_unstemmed Modeling of the conjugate radiation and conduction problem in a 3D complex multi-burner furnace
title_sort modeling of the conjugate radiation and conduction problem in a 3d complex multi-burner furnace
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
publishDate 2012-01-01
description Radiation is a major component of heat transfer in the modeling of furnaces. In this study, coupled radiative and conductive heat transfer problems are analyzed in complex geometries with inhomogeneous and anisotropic scattering participating media. A three-dimensional model is developed using combination of the discrete ordinates method and blocked-off-region procedure. The finite volume method has been adopted to solve the energy equation and the radiative source term in the energy equation is computed from intensities field. The accuracy of radiative conductive model is verified by comparison with benchmark solutions from the literature. As an example of engineering problems, radiative-conductive heat transfer in a furnace model with gray, inhomogeneous and anisotropic scattering media is numerically studied. The distributions of temperature and heat flux in the furnace are analyzed for different thermoradiative parameters such as conduction-radiation parameter, scattering albedo and anisotropic scattering coefficient. The numerical algorithm described is found to be fast and reliable for studying combined conductive and radiative heat transfer in three-dimensional irregular geometries.
topic three-dimensional complex geometries
radiation
conduction
blocked-off method
discrete ordinates method
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2012/0354-98361100034L.pdf
work_keys_str_mv AT larikhosro modelingoftheconjugateradiationandconductionproblemina3dcomplexmultiburnerfurnace
AT gandjalikhannassababdolrezaseyyed modelingoftheconjugateradiationandconductionproblemina3dcomplexmultiburnerfurnace
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