Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers

Background: In the present study, a parallel microchannel system is attached to the battery pack to decrease the temperature of the plate that the battery pack install on it. In fact, battery cooling is critical for electronic devices as the increasing temperature has a negative effect on performanc...

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Published in:Journal of the Taiwan Institute of Chemical Engineers
Main Author: Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
Format: Article
Language:English
Published: Taiwan Institute of Chemical Engineers 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85159094870&doi=10.1016%2fj.jtice.2023.104894&partnerID=40&md5=9824cc415385ca879c9c33346f9bfad6
id 2-s2.0-85159094870
spelling 2-s2.0-85159094870
Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
2023
Journal of the Taiwan Institute of Chemical Engineers
148

10.1016/j.jtice.2023.104894
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85159094870&doi=10.1016%2fj.jtice.2023.104894&partnerID=40&md5=9824cc415385ca879c9c33346f9bfad6
Background: In the present study, a parallel microchannel system is attached to the battery pack to decrease the temperature of the plate that the battery pack install on it. In fact, battery cooling is critical for electronic devices as the increasing temperature has a negative effect on performance. Methods: The impacts of several parameters like Reynolds number, and volume fraction of nanofluid are investigated on the battery surface. Significant findings: The numerical results demonstrated that the temperature of the battery surface declines dramatically up to 4° as the Reynolds number increases. Moreover, the increasing volume fraction of the present nanofluid to 0.1% boosts the heat transfer up to 12.1% and decreases the thermal and viscous entropy generations up to 5.37% and 23.2%, respectively. However, increasing the Reynolds number from 400 to 2200 resulted in a 253.71% and 389.80% increase in the thermal viscous generations. optimization revealed that the best channel number is 39 in which the Nusselt number and pressure ratio intensified by 17% and 24%, respectively. © 2023
Taiwan Institute of Chemical Engineers
18761070
English
Article

author Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
spellingShingle Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
author_facet Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
author_sort Wang D.; Abdullah M.M.; Alizadeh A.; Hai T.; Shamsborhan M.; Aybar H.Ş.
title Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
title_short Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
title_full Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
title_fullStr Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
title_full_unstemmed Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
title_sort Numerical investigation of parallel microchannels on a battery pack in the buildings with the aim of cooling by applying nanofluid- optimization in channel numbers
publishDate 2023
container_title Journal of the Taiwan Institute of Chemical Engineers
container_volume 148
container_issue
doi_str_mv 10.1016/j.jtice.2023.104894
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85159094870&doi=10.1016%2fj.jtice.2023.104894&partnerID=40&md5=9824cc415385ca879c9c33346f9bfad6
description Background: In the present study, a parallel microchannel system is attached to the battery pack to decrease the temperature of the plate that the battery pack install on it. In fact, battery cooling is critical for electronic devices as the increasing temperature has a negative effect on performance. Methods: The impacts of several parameters like Reynolds number, and volume fraction of nanofluid are investigated on the battery surface. Significant findings: The numerical results demonstrated that the temperature of the battery surface declines dramatically up to 4° as the Reynolds number increases. Moreover, the increasing volume fraction of the present nanofluid to 0.1% boosts the heat transfer up to 12.1% and decreases the thermal and viscous entropy generations up to 5.37% and 23.2%, respectively. However, increasing the Reynolds number from 400 to 2200 resulted in a 253.71% and 389.80% increase in the thermal viscous generations. optimization revealed that the best channel number is 39 in which the Nusselt number and pressure ratio intensified by 17% and 24%, respectively. © 2023
publisher Taiwan Institute of Chemical Engineers
issn 18761070
language English
format Article
accesstype
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