Heat transfer rate within non-spherical thick grains
The prediction of the internal heat conduction into non-spherical thick grains constitutes a significant issue for physical modeling of a large variety of application involving convective exchanges between fluid and grains. In that context, the present paper deals with heat rate measurements of vari...
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2017-01-01
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Series: | EPJ Web of Conferences |
Online Access: | https://doi.org/10.1051/epjconf/201714002015 |
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doaj-d986aa94a1a8427c860174d31c4838e12021-08-02T04:14:44ZengEDP SciencesEPJ Web of Conferences2100-014X2017-01-011400201510.1051/epjconf/201714002015epjconf162392Heat transfer rate within non-spherical thick grainsHuchet Florian0Richard Patrick1Joniot Jules2Le Guen Laurédan3LUNAM, Université de Nantes, IFSTTAR, MAST dpt, GPEM, CS4LUNAM, Université de Nantes, IFSTTAR, MAST dpt, GPEM, CS4LUNAM, Université de Nantes, IFSTTAR, MAST dpt, GPEM, CS4LUNAM, Université de Nantes, IFSTTAR, MAST dpt, GPEM, CS4The prediction of the internal heat conduction into non-spherical thick grains constitutes a significant issue for physical modeling of a large variety of application involving convective exchanges between fluid and grains. In that context, the present paper deals with heat rate measurements of various sizes of particles, the thermal sensors being located at the interface fluid/grain and into the granular materials. Their shape is designed as cuboid in order to control the surface exchanges. In enclosed coneshaped apparatus, a sharp temperature gradient is ensured from a hot source releasing the air stream temperature equal to about 400°C. Two orientations of grain related to the air stream are considered: diagonally and straight arrangements. The thermal diffusivity of the grains and the Biot numbers are estimated from an analytical solution established for slab. The thermal kinetics evolution is correlated to the sample granular mass and its orientation dependency is demonstrated. Consequently, a generalized scaling law is proposed which is funded from the effective area of the heat transfer at the grain-scale, the dimensionless time being defined from the calculated diffusional coefficients.https://doi.org/10.1051/epjconf/201714002015 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Huchet Florian Richard Patrick Joniot Jules Le Guen Laurédan |
spellingShingle |
Huchet Florian Richard Patrick Joniot Jules Le Guen Laurédan Heat transfer rate within non-spherical thick grains EPJ Web of Conferences |
author_facet |
Huchet Florian Richard Patrick Joniot Jules Le Guen Laurédan |
author_sort |
Huchet Florian |
title |
Heat transfer rate within non-spherical thick grains |
title_short |
Heat transfer rate within non-spherical thick grains |
title_full |
Heat transfer rate within non-spherical thick grains |
title_fullStr |
Heat transfer rate within non-spherical thick grains |
title_full_unstemmed |
Heat transfer rate within non-spherical thick grains |
title_sort |
heat transfer rate within non-spherical thick grains |
publisher |
EDP Sciences |
series |
EPJ Web of Conferences |
issn |
2100-014X |
publishDate |
2017-01-01 |
description |
The prediction of the internal heat conduction into non-spherical thick grains constitutes a significant issue for physical modeling of a large variety of application involving convective exchanges between fluid and grains. In that context, the present paper deals with heat rate measurements of various sizes of particles, the thermal sensors being located at the interface fluid/grain and into the granular materials. Their shape is designed as cuboid in order to control the surface exchanges. In enclosed coneshaped apparatus, a sharp temperature gradient is ensured from a hot source releasing the air stream temperature equal to about 400°C. Two orientations of grain related to the air stream are considered: diagonally and straight arrangements. The thermal diffusivity of the grains and the Biot numbers are estimated from an analytical solution established for slab. The thermal kinetics evolution is correlated to the sample granular mass and its orientation dependency is demonstrated. Consequently, a generalized scaling law is proposed which is funded from the effective area of the heat transfer at the grain-scale, the dimensionless time being defined from the calculated diffusional coefficients. |
url |
https://doi.org/10.1051/epjconf/201714002015 |
work_keys_str_mv |
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