Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)

This chapter investigates the thermal properties of a new type of hollow sphere structures. For this new type, the sphere shell is perforated by several holes in order to open the inner sphere volume and surface. The effective thermal conductivity of perforated sphere structures in several kinds of...

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Main Authors: Hosseini, S. M. H., Ochsner, Andreas, Merkel, M., Fiedler, T.
Other Authors: Delgado, J. M. P. Q.
Format: Book Section
Published: Studium Press LLC 2010
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Online Access:http://eprints.utm.my/id/eprint/31194/
http://studiumpress.in/indetail.asp?id=124
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spelling my.utm.311942017-08-03T01:26:55Z http://eprints.utm.my/id/eprint/31194/ Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS) Hosseini, S. M. H. Ochsner, Andreas Merkel, M. Fiedler, T. QD Chemistry This chapter investigates the thermal properties of a new type of hollow sphere structures. For this new type, the sphere shell is perforated by several holes in order to open the inner sphere volume and surface. The effective thermal conductivity of perforated sphere structures in several kinds of arrangements is numerically evaluated for different geometrical parameters such as: hole diameter of the perforated hollow spheres, hollow spheres' wall thickness and joining element dimension. The results are compared to classical configurations without perforation. In addition the influence of different joining techniques, i.e. sintering and adhesively bonding, on the thermal conductivity has been compared. Three dimensional finite element analysis was used in order to investigate the heat conductivity of simple cubic, body-centered cubic, face-centered cubic and hexagonal unit cell models. A linear dependency behavior was found for the heat conductivity of different hole diameters for several kinds of arrangements when the results were plotted over the average density for homogeneous models. Studium Press LLC Delgado, J. M. P. Q. 2010 Book Section PeerReviewed Hosseini, S. M. H. and Ochsner, Andreas and Merkel, M. and Fiedler, T. (2010) Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS). In: Current Trends in Chemical Engineering. Studium Press LLC, India, pp. 131-151. ISBN 1933699752 http://studiumpress.in/indetail.asp?id=124
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 QD Chemistry
spellingShingle QD Chemistry
Hosseini, S. M. H.
Ochsner, Andreas
Merkel, M.
Fiedler, T.
Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
description This chapter investigates the thermal properties of a new type of hollow sphere structures. For this new type, the sphere shell is perforated by several holes in order to open the inner sphere volume and surface. The effective thermal conductivity of perforated sphere structures in several kinds of arrangements is numerically evaluated for different geometrical parameters such as: hole diameter of the perforated hollow spheres, hollow spheres' wall thickness and joining element dimension. The results are compared to classical configurations without perforation. In addition the influence of different joining techniques, i.e. sintering and adhesively bonding, on the thermal conductivity has been compared. Three dimensional finite element analysis was used in order to investigate the heat conductivity of simple cubic, body-centered cubic, face-centered cubic and hexagonal unit cell models. A linear dependency behavior was found for the heat conductivity of different hole diameters for several kinds of arrangements when the results were plotted over the average density for homogeneous models.
author2 Delgado, J. M. P. Q.
author_facet Delgado, J. M. P. Q.
Hosseini, S. M. H.
Ochsner, Andreas
Merkel, M.
Fiedler, T.
format Book Section
author Hosseini, S. M. H.
Ochsner, Andreas
Merkel, M.
Fiedler, T.
author_sort Hosseini, S. M. H.
title Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
title_short Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
title_full Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
title_fullStr Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
title_full_unstemmed Predicting the effective thermal conductivity of Perforated Hollow Sphere Structures (PHSS)
title_sort predicting the effective thermal conductivity of perforated hollow sphere structures (phss)
publisher Studium Press LLC
publishDate 2010
url http://eprints.utm.my/id/eprint/31194/
http://studiumpress.in/indetail.asp?id=124
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