Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation

In this study, analysis of heat transfer in a longitudinal rectangular fin with temperature-dependent thermal conductivity and internal heat generation was carried out using finite difference method. The developed systems of non-linear equations that resulted from the discretization using finite dif...

Full description

Bibliographic Details
Main Author: M.G. Sobamowo
Format: Article
Language:English
Published: Elsevier 2017-03-01
Series:Alexandria Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016816300783
id doaj-154c7c0daa6f453ebcac054e037938f3
record_format Article
spelling doaj-154c7c0daa6f453ebcac054e037938f32021-06-02T05:14:54ZengElsevierAlexandria Engineering Journal1110-01682017-03-0156111110.1016/j.aej.2016.04.022Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generationM.G. SobamowoIn this study, analysis of heat transfer in a longitudinal rectangular fin with temperature-dependent thermal conductivity and internal heat generation was carried out using finite difference method. The developed systems of non-linear equations that resulted from the discretization using finite difference scheme were solved with the aid of MATLAB using fsolve. The numerical solution was validated with the exact solution for the linear problem. The developed heat transfer models were used to investigate the effects of thermo-geometric parameters, coefficient of heat transfer and thermal conductivity (non-linear) parameters on the temperature distribution, heat transfer and thermal performance of the longitudinal rectangular fin. From the results, it shows that the fin temperature distribution, the total heat transfer, and the fin efficiency are significantly affected by the thermo-geometric parameters of the fin. Also, for the solution to be thermally stable, the fin thermo-geometric parameter must not exceed a specific value. However, it was established that the increase in temperature-dependent properties and internal heat generation values increases the thermal stability range of the thermo-geometric parameter. The results obtained in this analysis serve as basis for comparison of any other method of analysis of the problem.http://www.sciencedirect.com/science/article/pii/S1110016816300783Heat transfer analysisLongitudinal finFinite difference methodTemperature-dependent thermal conductivityInternal heat generation
collection DOAJ
language English
format Article
sources DOAJ
author M.G. Sobamowo
spellingShingle M.G. Sobamowo
Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
Alexandria Engineering Journal
Heat transfer analysis
Longitudinal fin
Finite difference method
Temperature-dependent thermal conductivity
Internal heat generation
author_facet M.G. Sobamowo
author_sort M.G. Sobamowo
title Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
title_short Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
title_full Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
title_fullStr Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
title_full_unstemmed Analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
title_sort analysis of convective longitudinal fin with temperature-dependent thermal conductivity and internal heat generation
publisher Elsevier
series Alexandria Engineering Journal
issn 1110-0168
publishDate 2017-03-01
description In this study, analysis of heat transfer in a longitudinal rectangular fin with temperature-dependent thermal conductivity and internal heat generation was carried out using finite difference method. The developed systems of non-linear equations that resulted from the discretization using finite difference scheme were solved with the aid of MATLAB using fsolve. The numerical solution was validated with the exact solution for the linear problem. The developed heat transfer models were used to investigate the effects of thermo-geometric parameters, coefficient of heat transfer and thermal conductivity (non-linear) parameters on the temperature distribution, heat transfer and thermal performance of the longitudinal rectangular fin. From the results, it shows that the fin temperature distribution, the total heat transfer, and the fin efficiency are significantly affected by the thermo-geometric parameters of the fin. Also, for the solution to be thermally stable, the fin thermo-geometric parameter must not exceed a specific value. However, it was established that the increase in temperature-dependent properties and internal heat generation values increases the thermal stability range of the thermo-geometric parameter. The results obtained in this analysis serve as basis for comparison of any other method of analysis of the problem.
topic Heat transfer analysis
Longitudinal fin
Finite difference method
Temperature-dependent thermal conductivity
Internal heat generation
url http://www.sciencedirect.com/science/article/pii/S1110016816300783
work_keys_str_mv AT mgsobamowo analysisofconvectivelongitudinalfinwithtemperaturedependentthermalconductivityandinternalheatgeneration
_version_ 1721408133151064064