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Impact of inhomogeneous unsteady participating media in a coupled convection-radiation system using finite element based methods

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Title: Impact of inhomogeneous unsteady participating media in a coupled convection-radiation system using finite element based methods
Authors: Avalos Patino, J
Dargaville, S
Neethling, S
Piggott, M
Item Type: Journal Article
Abstract: Combined convection–radiation is a common phenomenon in many engineering problems. A differentially–heated rectangular enclosure is a widely–used benchmark for testing numerical techniques developed for solving the coupled momentum and energy equations related to combined convection–radiation. Previous studies have tended to describe the phenomenon in cases using simplified characteristics for the participating media including the assumptions of: (i) uniform distribution, (ii) homogeneous cross section, (iii) grey gas radiation and (iv) under steady state conditions. The effects of an inhomogeneous unsteady participating media, e.g. composed of a mixture of gases, are arguably understudied. In this work the effect of an inhomogeneous unsteady participating media on combined convection–radiation inside a rectangular enclosure is considered, under both grey and non-grey gas modelling approaches involving a mixture of gases. A key novelty in this work is the inclusion of the ability to handle inhomogeneous participating media which change in space, time and absorption cross section values as a result of the convection–radiation coupling, allowing us to assess different gas modelling approaches. A global gas radiation model is used and a new non–uniform discretisation method for the absorption distribution function is introduced; this method allows a better handling of those energy groups in which the Planck absorption coefficient is low, improving the performance of the spherical harmonics method and mitigating ray–effects on finite elements in angle discretisation. The momentum and energy equations are solved numerically using finite element based discretisation methods. The radiative transfer equation is solved numerically using both spherical harmonics and finite elements for the angular discretisation, with their relative performance compared. The results highlight the importance that the characteristics of the participating media can have on the convection phenomenon and therefore on the resulting temperature field. Keywords: Coupled convection–radiation, inhomogeneous unsteady participating media, gas radiation model, finite elements method.
Issue Date: Sep-2021
Date of Acceptance: 4-May-2021
URI: http://hdl.handle.net/10044/1/88647
DOI: 10.1016/j.ijheatmasstransfer.2021.121452
ISSN: 0017-9310
Publisher: Elsevier
Start Page: 1
End Page: 16
Journal / Book Title: International Journal of Heat and Mass Transfer
Volume: 176
Copyright Statement: © 2021 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Keywords: Numerical & Computational Mathematics
01 Mathematical Sciences
02 Physical Sciences
09 Engineering
Mechanical Engineering & Transports
Publication Status: Published
Online Publication Date: 2021-06-03
Appears in Collections:Earth Science and Engineering
Grantham Institute for Climate Change
Faculty of Natural Sciences
Faculty of Engineering



This item is licensed under a Creative Commons License Creative Commons