Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks

To analyze the possibility of heat transfer enhancement of micro-scale heat exchangers, the transport phenomena of water (H2O) - Aluminum oxide (Al2O3) nanofluid in a three-dimensional microchannel with converging flow passages in the presence of a magnetic field are numerically investigated. All si...

Full description

Bibliographic Details
Main Authors: Amir Fattahi, Maziar Dehghan, Mohammad Sadegh Valipour
Format: Article
Language:English
Published: Semnan University 2022-05-01
Series:Journal of Heat and Mass Transfer Research
Subjects:
Online Access:https://jhmtr.semnan.ac.ir/article_6735_3228fb25a7dab1535e2605e3621877f3.pdf
_version_ 1797259666470731776
author Amir Fattahi
Maziar Dehghan
Mohammad Sadegh Valipour
author_facet Amir Fattahi
Maziar Dehghan
Mohammad Sadegh Valipour
author_sort Amir Fattahi
collection DOAJ
description To analyze the possibility of heat transfer enhancement of micro-scale heat exchangers, the transport phenomena of water (H2O) - Aluminum oxide (Al2O3) nanofluid in a three-dimensional microchannel with converging flow passages in the presence of a magnetic field are numerically investigated. All simulations are performed for the Harman number (Ha) of 0-20 and the volume fraction of ∅ = 0 and 0.02 in the laminar regime (Reynolds number, Re, < 100). The magnetic field is applied in the normal direction (with respect to the flow direction). The results show that the convection heat transfer coefficient, as well as the friction factor, increases with the increase of the Hartman number. The increase in the friction factor is noticeable up to being doubled while the increase of the convection heat transfer coefficient is up to 20 %. The uniform velocity arising from the magnetic field presence gives almost uniform temperature distributions in the fluid and solid parts of the micro-channel, which makes removing higher heat fluxes within the safe temperature limit possible. Although the heat transfer performance enhances with the increase of the magnetic field, the rate of heat transfer enhancement decreases with the increasing magnetic field. In other words, the magnetic field has a maximum effective value and there is no justification for a further increase according to the energy efficiency perspectives. It should be noted that the mentioned limits for magnetic field (here, presented with Ha) are very high and almost impossible to be applied at micro-scales. In addition, the effect of the magnetic field on the velocity profile decreases with the increase of the passage convergence. In other words, the flow convergence eliminates the need for a high magnetic field to have a uniform velocity profile and as well a uniform temperature distribution.
first_indexed 2024-04-24T23:13:03Z
format Article
id doaj.art-d3f5a557924e4874a9b0a7a85a415dfc
institution Directory Open Access Journal
issn 2345-508X
2383-3068
language English
last_indexed 2024-04-24T23:13:03Z
publishDate 2022-05-01
publisher Semnan University
record_format Article
series Journal of Heat and Mass Transfer Research
spelling doaj.art-d3f5a557924e4874a9b0a7a85a415dfc2024-03-17T08:04:29ZengSemnan UniversityJournal of Heat and Mass Transfer Research2345-508X2383-30682022-05-0191778410.22075/jhmtr.2022.22016.13206735Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat SinksAmir Fattahi0Maziar Dehghan1Mohammad Sadegh Valipour2Faculty of Mechanical Engineering, Semnan University, Semnan, IranDepartment of Energy, Material and Energy Research Center (MERC), Tehran, IranFaculty of Mechanical Engineering, Semnan University, Semnan, IranTo analyze the possibility of heat transfer enhancement of micro-scale heat exchangers, the transport phenomena of water (H2O) - Aluminum oxide (Al2O3) nanofluid in a three-dimensional microchannel with converging flow passages in the presence of a magnetic field are numerically investigated. All simulations are performed for the Harman number (Ha) of 0-20 and the volume fraction of ∅ = 0 and 0.02 in the laminar regime (Reynolds number, Re, < 100). The magnetic field is applied in the normal direction (with respect to the flow direction). The results show that the convection heat transfer coefficient, as well as the friction factor, increases with the increase of the Hartman number. The increase in the friction factor is noticeable up to being doubled while the increase of the convection heat transfer coefficient is up to 20 %. The uniform velocity arising from the magnetic field presence gives almost uniform temperature distributions in the fluid and solid parts of the micro-channel, which makes removing higher heat fluxes within the safe temperature limit possible. Although the heat transfer performance enhances with the increase of the magnetic field, the rate of heat transfer enhancement decreases with the increasing magnetic field. In other words, the magnetic field has a maximum effective value and there is no justification for a further increase according to the energy efficiency perspectives. It should be noted that the mentioned limits for magnetic field (here, presented with Ha) are very high and almost impossible to be applied at micro-scales. In addition, the effect of the magnetic field on the velocity profile decreases with the increase of the passage convergence. In other words, the flow convergence eliminates the need for a high magnetic field to have a uniform velocity profile and as well a uniform temperature distribution.https://jhmtr.semnan.ac.ir/article_6735_3228fb25a7dab1535e2605e3621877f3.pdfnanofluidconverging flow passageconvective heat transfermicrochannelmagnetic field
spellingShingle Amir Fattahi
Maziar Dehghan
Mohammad Sadegh Valipour
Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
Journal of Heat and Mass Transfer Research
nanofluid
converging flow passage
convective heat transfer
microchannel
magnetic field
title Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
title_full Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
title_fullStr Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
title_full_unstemmed Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
title_short Converging Flow Passages, Nanofluids and Magnetic Field: Effects on the Thermal Response of Microchannel Heat Sinks
title_sort converging flow passages nanofluids and magnetic field effects on the thermal response of microchannel heat sinks
topic nanofluid
converging flow passage
convective heat transfer
microchannel
magnetic field
url https://jhmtr.semnan.ac.ir/article_6735_3228fb25a7dab1535e2605e3621877f3.pdf
work_keys_str_mv AT amirfattahi convergingflowpassagesnanofluidsandmagneticfieldeffectsonthethermalresponseofmicrochannelheatsinks
AT maziardehghan convergingflowpassagesnanofluidsandmagneticfieldeffectsonthethermalresponseofmicrochannelheatsinks
AT mohammadsadeghvalipour convergingflowpassagesnanofluidsandmagneticfieldeffectsonthethermalresponseofmicrochannelheatsinks