An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials

In this study, the surface-to-surface radiation model of the Fluent CFD code is used to investigate the response of a fibrous material to the radiative heat transfer. The unsteady state heat transfer equation is solved for the temperature and heat flux in and around the fibers that constitute a nonw...

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Main Authors: Imad Qashou, Hooman Vahedi Tafreshi, Behnam Pourdeyhimi
Format: Article
Language:English
Published: SAGE Publishing 2009-03-01
Series:Journal of Engineered Fibers and Fabrics
Online Access:http://www.jeffjournal.org/papers/Volume4/4.1Qashou-A_Investigation_of_the_Radiative_Heat.pdf
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spelling doaj-bdec203b4f9e451ba3812448eddb6d432020-11-25T03:43:38ZengSAGE PublishingJournal of Engineered Fibers and Fabrics1558-92502009-03-0141915An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous MaterialsImad QashouHooman Vahedi TafreshiBehnam PourdeyhimiIn this study, the surface-to-surface radiation model of the Fluent CFD code is used to investigate the response of a fibrous material to the radiative heat transfer. The unsteady state heat transfer equation is solved for the temperature and heat flux in and around the fibers that constitute a nonwoven fibrous material. For a fixed fiber diameter, it was shown that the higher the fabric’s Solid Volume Fraction (SVF), the slower is the material’s average temperature rise. Our simulation results also indicate that for a fixed SVF, fiber diameter has a negligible influence on the unsteady transfer of heat through the media. Of particular interest in this paper is the effect of material’s thickness on the heat penetration. It is shown that the transient heat transfer exponentially decreases by increasing the material’s thickness for fixed SVFs and fiber diameters. The above finding is also in agreement with our experimental study.http://www.jeffjournal.org/papers/Volume4/4.1Qashou-A_Investigation_of_the_Radiative_Heat.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Imad Qashou
Hooman Vahedi Tafreshi
Behnam Pourdeyhimi
spellingShingle Imad Qashou
Hooman Vahedi Tafreshi
Behnam Pourdeyhimi
An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
Journal of Engineered Fibers and Fabrics
author_facet Imad Qashou
Hooman Vahedi Tafreshi
Behnam Pourdeyhimi
author_sort Imad Qashou
title An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
title_short An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
title_full An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
title_fullStr An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
title_full_unstemmed An Investigation of the Radiative Heat Transfer through Nonwoven Fibrous Materials
title_sort investigation of the radiative heat transfer through nonwoven fibrous materials
publisher SAGE Publishing
series Journal of Engineered Fibers and Fabrics
issn 1558-9250
publishDate 2009-03-01
description In this study, the surface-to-surface radiation model of the Fluent CFD code is used to investigate the response of a fibrous material to the radiative heat transfer. The unsteady state heat transfer equation is solved for the temperature and heat flux in and around the fibers that constitute a nonwoven fibrous material. For a fixed fiber diameter, it was shown that the higher the fabric’s Solid Volume Fraction (SVF), the slower is the material’s average temperature rise. Our simulation results also indicate that for a fixed SVF, fiber diameter has a negligible influence on the unsteady transfer of heat through the media. Of particular interest in this paper is the effect of material’s thickness on the heat penetration. It is shown that the transient heat transfer exponentially decreases by increasing the material’s thickness for fixed SVFs and fiber diameters. The above finding is also in agreement with our experimental study.
url http://www.jeffjournal.org/papers/Volume4/4.1Qashou-A_Investigation_of_the_Radiative_Heat.pdf
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