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Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions

An investigation was carried out in order to develop an accurate analytical solution and a numerical (FEA) solution for steady-state heat transfer in a circular sandwich structure incorporated with convective-radiative boundary conditions. The dimensional governing equations and boundary conditions...

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Autores principales: Das, Palash, Islam, Md. Ashraful, Mondal, Dipayan, Nazim, Md. Sharier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10643303/
https://www.ncbi.nlm.nih.gov/pubmed/38027637
http://dx.doi.org/10.1016/j.heliyon.2023.e21725
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author Das, Palash
Islam, Md. Ashraful
Mondal, Dipayan
Nazim, Md. Sharier
author_facet Das, Palash
Islam, Md. Ashraful
Mondal, Dipayan
Nazim, Md. Sharier
author_sort Das, Palash
collection PubMed
description An investigation was carried out in order to develop an accurate analytical solution and a numerical (FEA) solution for steady-state heat transfer in a circular sandwich structure incorporated with convective-radiative boundary conditions. The dimensional governing equations and boundary conditions were developed in the form of a 4th order algebraic equation, and then the solution was obtained using Ferrari's method. By solving for the roots of the quartic equation, we were able to determine the dimensionless temperature fields of the FG sandwich composite. The findings obtained utilizing the exact analytical solution for the FG sandwich composite under thermal loads were satisfactorily validated against those data obtained using the Galerkin finite element approximation. The impact of geometric and thermo-physical characteristics, such as Biot number [Formula: see text] , Inner and outer surface thickness ratio [Formula: see text] , ambient temperature ratio [Formula: see text] , radiation-conduction parameter [Formula: see text] , and thermal conductivity ratio [Formula: see text] on the efficiency of heat transfer, has also been studied. This study reveals the distinct effect of Biot number on the inner and outer layers of the composite cylinder. It shows that [Formula: see text] has a negligent effect on temperature distribution; on the other hand, the outer surface ([Formula: see text]) minimizes temperature variation. However, for design consideration, a thicker inner face sheet is not recommended in high thermal load, as [Formula: see text] has an insignificant impact on inner surface thickness on top surface temperature. Moreover, the outer surface temperature appears to be more sensitive to [Formula: see text] than the radiation-convection side. Furthermore, the given analytical solution is adequately verified against the proposed FEA method, having an error of less than [Formula: see text].
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spelling pubmed-106433032023-10-28 Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions Das, Palash Islam, Md. Ashraful Mondal, Dipayan Nazim, Md. Sharier Heliyon Research Article An investigation was carried out in order to develop an accurate analytical solution and a numerical (FEA) solution for steady-state heat transfer in a circular sandwich structure incorporated with convective-radiative boundary conditions. The dimensional governing equations and boundary conditions were developed in the form of a 4th order algebraic equation, and then the solution was obtained using Ferrari's method. By solving for the roots of the quartic equation, we were able to determine the dimensionless temperature fields of the FG sandwich composite. The findings obtained utilizing the exact analytical solution for the FG sandwich composite under thermal loads were satisfactorily validated against those data obtained using the Galerkin finite element approximation. The impact of geometric and thermo-physical characteristics, such as Biot number [Formula: see text] , Inner and outer surface thickness ratio [Formula: see text] , ambient temperature ratio [Formula: see text] , radiation-conduction parameter [Formula: see text] , and thermal conductivity ratio [Formula: see text] on the efficiency of heat transfer, has also been studied. This study reveals the distinct effect of Biot number on the inner and outer layers of the composite cylinder. It shows that [Formula: see text] has a negligent effect on temperature distribution; on the other hand, the outer surface ([Formula: see text]) minimizes temperature variation. However, for design consideration, a thicker inner face sheet is not recommended in high thermal load, as [Formula: see text] has an insignificant impact on inner surface thickness on top surface temperature. Moreover, the outer surface temperature appears to be more sensitive to [Formula: see text] than the radiation-convection side. Furthermore, the given analytical solution is adequately verified against the proposed FEA method, having an error of less than [Formula: see text]. Elsevier 2023-10-28 /pmc/articles/PMC10643303/ /pubmed/38027637 http://dx.doi.org/10.1016/j.heliyon.2023.e21725 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Das, Palash
Islam, Md. Ashraful
Mondal, Dipayan
Nazim, Md. Sharier
Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title_full Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title_fullStr Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title_full_unstemmed Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title_short Analytical and numerical (FEA) solution for steady-state heat transfer in generic FGM cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
title_sort analytical and numerical (fea) solution for steady-state heat transfer in generic fgm cylinder coated with two layers of isotropic material under convective-radiative boundary conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10643303/
https://www.ncbi.nlm.nih.gov/pubmed/38027637
http://dx.doi.org/10.1016/j.heliyon.2023.e21725
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