Cargando…

A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger

In micro heat exchangers, due to the presence of distributing and collecting manifolds as well as hundreds of parallel microchannels, a complete conjugate heat transfer analysis requires a large amount of computational power. Therefore in this study, a novel methodology is developed to model the mic...

Descripción completa

Detalles Bibliográficos
Autores principales: Rehman, Danish, Joseph, Jojomon, Morini, Gian Luca, Delanaye, Michel, Brandner, Juergen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7074688/
https://www.ncbi.nlm.nih.gov/pubmed/32093331
http://dx.doi.org/10.3390/mi11020218
_version_ 1783506890685153280
author Rehman, Danish
Joseph, Jojomon
Morini, Gian Luca
Delanaye, Michel
Brandner, Juergen
author_facet Rehman, Danish
Joseph, Jojomon
Morini, Gian Luca
Delanaye, Michel
Brandner, Juergen
author_sort Rehman, Danish
collection PubMed
description In micro heat exchangers, due to the presence of distributing and collecting manifolds as well as hundreds of parallel microchannels, a complete conjugate heat transfer analysis requires a large amount of computational power. Therefore in this study, a novel methodology is developed to model the microchannels as a porous medium where a compressible gas is used as a working fluid. With the help of such a reduced model, a detailed flow analysis through individual microchannels can be avoided by studying the device as a whole at a considerably less computational cost. A micro heat exchanger with 133 parallel microchannels (average hydraulic diameter of [Formula: see text] m) in both cocurrent and counterflow configurations is investigated in the current study. Hot and cold streams are separated by a stainless-steel partition foil having a thickness of [Formula: see text] m. Microchannels have a rectangular cross section of [Formula: see text] m [Formula: see text] m with a wall thickness of [Formula: see text] m in between. As a first step, a numerical study for conjugate heat transfer analysis of microchannels only, without distributing and collecting manifolds is performed. Mass flow inside hot and cold fluid domains is increased such that inlet Reynolds number for both domains remains within the laminar regime. Inertial and viscous coefficients extracted from this study are then utilized to model pressure and temperature trends within the porous medium model. To cater for the density dependence of inertial and viscous coefficients due to the compressible nature of gas flow in microchannels, a modified formulation of Darcy–Forschheimer law is adopted. A complete model of a double layer micro heat exchanger with collecting and distributing manifolds where microchannels are modeled as the porous medium is finally developed and used to estimate the overall heat exchanger effectiveness of the investigated micro heat exchanger. A comparison of computational results using proposed hybrid methodology with previously published experimental results of the same micro heat exchanger showed that adopted methodology can predict the heat exchanger effectiveness within the experimental uncertainty for both cocurrent and counterflow configurations.
format Online
Article
Text
id pubmed-7074688
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-70746882020-03-20 A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger Rehman, Danish Joseph, Jojomon Morini, Gian Luca Delanaye, Michel Brandner, Juergen Micromachines (Basel) Article In micro heat exchangers, due to the presence of distributing and collecting manifolds as well as hundreds of parallel microchannels, a complete conjugate heat transfer analysis requires a large amount of computational power. Therefore in this study, a novel methodology is developed to model the microchannels as a porous medium where a compressible gas is used as a working fluid. With the help of such a reduced model, a detailed flow analysis through individual microchannels can be avoided by studying the device as a whole at a considerably less computational cost. A micro heat exchanger with 133 parallel microchannels (average hydraulic diameter of [Formula: see text] m) in both cocurrent and counterflow configurations is investigated in the current study. Hot and cold streams are separated by a stainless-steel partition foil having a thickness of [Formula: see text] m. Microchannels have a rectangular cross section of [Formula: see text] m [Formula: see text] m with a wall thickness of [Formula: see text] m in between. As a first step, a numerical study for conjugate heat transfer analysis of microchannels only, without distributing and collecting manifolds is performed. Mass flow inside hot and cold fluid domains is increased such that inlet Reynolds number for both domains remains within the laminar regime. Inertial and viscous coefficients extracted from this study are then utilized to model pressure and temperature trends within the porous medium model. To cater for the density dependence of inertial and viscous coefficients due to the compressible nature of gas flow in microchannels, a modified formulation of Darcy–Forschheimer law is adopted. A complete model of a double layer micro heat exchanger with collecting and distributing manifolds where microchannels are modeled as the porous medium is finally developed and used to estimate the overall heat exchanger effectiveness of the investigated micro heat exchanger. A comparison of computational results using proposed hybrid methodology with previously published experimental results of the same micro heat exchanger showed that adopted methodology can predict the heat exchanger effectiveness within the experimental uncertainty for both cocurrent and counterflow configurations. MDPI 2020-02-20 /pmc/articles/PMC7074688/ /pubmed/32093331 http://dx.doi.org/10.3390/mi11020218 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rehman, Danish
Joseph, Jojomon
Morini, Gian Luca
Delanaye, Michel
Brandner, Juergen
A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title_full A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title_fullStr A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title_full_unstemmed A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title_short A Hybrid Numerical Methodology Based on CFD and Porous Medium for Thermal Performance Evaluation of Gas to Gas Micro Heat Exchanger
title_sort hybrid numerical methodology based on cfd and porous medium for thermal performance evaluation of gas to gas micro heat exchanger
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7074688/
https://www.ncbi.nlm.nih.gov/pubmed/32093331
http://dx.doi.org/10.3390/mi11020218
work_keys_str_mv AT rehmandanish ahybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT josephjojomon ahybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT morinigianluca ahybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT delanayemichel ahybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT brandnerjuergen ahybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT rehmandanish hybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT josephjojomon hybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT morinigianluca hybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT delanayemichel hybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger
AT brandnerjuergen hybridnumericalmethodologybasedoncfdandporousmediumforthermalperformanceevaluationofgastogasmicroheatexchanger