Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media

The heat transfer and entropy generation in a tube filled with double-layer porous media are analytically investigated. The wall of the tube is subjected to a constant heat flux. The Darcy-Brinkman model is utilized to describe the fluid flow, and the local thermal non-equilibrium model is employed...

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Main Authors: Kun Yang, Wei Huang, Xin Li, Jiabing Wang
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Entropy
Subjects:
Online Access:https://www.mdpi.com/1099-4300/22/11/1214
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spelling doaj-d81cb53e092c4a2396648550f5ff6cd02020-11-25T04:03:48ZengMDPI AGEntropy1099-43002020-10-01221214121410.3390/e22111214Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous MediaKun Yang0Wei Huang1Xin Li2Jiabing Wang3School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, ChinaSchool of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, ChinaSchool of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, ChinaSchool of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, ChinaThe heat transfer and entropy generation in a tube filled with double-layer porous media are analytically investigated. The wall of the tube is subjected to a constant heat flux. The Darcy-Brinkman model is utilized to describe the fluid flow, and the local thermal non-equilibrium model is employed to establish the energy equations. The solutions of the temperature and velocity distributions are analytically derived and validated in limiting case. The analytical solutions of the local and total entropy generation, as well as the Nusselt number, are further derived to analyze the performance of heat transfer and irreversibility of the tube. The influences of the Darcy number, the Biot number, the dimensionless interfacial radius, and the thermal conductivity ratio, on flow and heat transfer are discussed. The results indicate, for the first time, that the Nusselt number for the tube filled with double-layer porous media can be larger than that for the tube filled with single layer porous medium, while the total entropy generation rate for the tube filled with double-layer porous media can be less than that for the tube filled with single layer porous medium. And the dimensionless interfacial radius corresponding to the maximum value of the Nusselt number is different from that corresponding to the minimum value of the total entropy generation rate.https://www.mdpi.com/1099-4300/22/11/1214porous mediadouble-layerlocal thermal non-equilibriumanalytical solution
collection DOAJ
language English
format Article
sources DOAJ
author Kun Yang
Wei Huang
Xin Li
Jiabing Wang
spellingShingle Kun Yang
Wei Huang
Xin Li
Jiabing Wang
Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
Entropy
porous media
double-layer
local thermal non-equilibrium
analytical solution
author_facet Kun Yang
Wei Huang
Xin Li
Jiabing Wang
author_sort Kun Yang
title Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
title_short Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
title_full Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
title_fullStr Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
title_full_unstemmed Analytical Analysis of Heat Transfer and Entropy Generation in a Tube Filled with Double-Layer Porous Media
title_sort analytical analysis of heat transfer and entropy generation in a tube filled with double-layer porous media
publisher MDPI AG
series Entropy
issn 1099-4300
publishDate 2020-10-01
description The heat transfer and entropy generation in a tube filled with double-layer porous media are analytically investigated. The wall of the tube is subjected to a constant heat flux. The Darcy-Brinkman model is utilized to describe the fluid flow, and the local thermal non-equilibrium model is employed to establish the energy equations. The solutions of the temperature and velocity distributions are analytically derived and validated in limiting case. The analytical solutions of the local and total entropy generation, as well as the Nusselt number, are further derived to analyze the performance of heat transfer and irreversibility of the tube. The influences of the Darcy number, the Biot number, the dimensionless interfacial radius, and the thermal conductivity ratio, on flow and heat transfer are discussed. The results indicate, for the first time, that the Nusselt number for the tube filled with double-layer porous media can be larger than that for the tube filled with single layer porous medium, while the total entropy generation rate for the tube filled with double-layer porous media can be less than that for the tube filled with single layer porous medium. And the dimensionless interfacial radius corresponding to the maximum value of the Nusselt number is different from that corresponding to the minimum value of the total entropy generation rate.
topic porous media
double-layer
local thermal non-equilibrium
analytical solution
url https://www.mdpi.com/1099-4300/22/11/1214
work_keys_str_mv AT kunyang analyticalanalysisofheattransferandentropygenerationinatubefilledwithdoublelayerporousmedia
AT weihuang analyticalanalysisofheattransferandentropygenerationinatubefilledwithdoublelayerporousmedia
AT xinli analyticalanalysisofheattransferandentropygenerationinatubefilledwithdoublelayerporousmedia
AT jiabingwang analyticalanalysisofheattransferandentropygenerationinatubefilledwithdoublelayerporousmedia
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