Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC

A Proton Electrolyte Membrane fuel cells (PEMFC) is considered to be a viable alternative to Internal Combustion Engines (ICEs) in automotive applications due to the key advantages in thermal management system. The main duty of thermal management system is to maintain the desirable temperature, with...

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Published in:Journal of Advanced Research in Numerical Heat Transfer
Main Author: Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
Format: Article
Language:English
Published: Penerbit Akademia Baru 2021
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113187139&partnerID=40&md5=949ee7a65896945974d982a5ef79f8e1
id 2-s2.0-85113187139
spelling 2-s2.0-85113187139
Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
2021
Journal of Advanced Research in Numerical Heat Transfer
4
1

https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113187139&partnerID=40&md5=949ee7a65896945974d982a5ef79f8e1
A Proton Electrolyte Membrane fuel cells (PEMFC) is considered to be a viable alternative to Internal Combustion Engines (ICEs) in automotive applications due to the key advantages in thermal management system. The main duty of thermal management system is to maintain the desirable temperature, with a uniform temperature distribution across the stack and its individual membranes. In this paper, the thermal enhancement for two types of PEMFC cooling plates were analysed and presented. The hybrid Al₂O₃:SiO₂ was used as coolant in distributor cooling plate. The study focuses on water based 0.5% volume concentration of single Al₂O₃, single SiO₂ nanofluids, hybrid Al₂O₃:SiO nanofluids with mixture ratio of 10:90 and 50:50. The effect of different ratios of nanofluids to heat transfer enhancement and fluid flow in Reynold number range of 400 to 2000 was observed. A 3D computational fluid dynamic (CFD) was developed based on distributor cooling plates using Ansys 16.0. Positive heat transfer enhancement was obtained where the 10:90 Al₂O₃:SiO₂ nanofluids has the highest heat transfer coefficient as compared to other nanofluids used. However, all nanofluids experienced higher pressure drop. Therefore, the advantage ratio was used to analyze the effect of both heat transfer enhancements and pressure drop demerits for nanofluids adoption. The results concluded that 10:90 Al₂O₃:SiO₂ hybrid nanofluid is the most feasible candidate followed by 50:50 Al₂O₃:SiO₂ Al₂O₃ hybrid nanofluids up to fluid flow of Re1000. The positive results implied that hybrid Al₂O₃:SiO₂ nanofluids do improve the single nanofluids behaviour and has a better potential for future applications in PEMFC thermal management. © 2021, Penerbit Akademia Baru. All rights reserved.
Penerbit Akademia Baru
27350142
English
Article

author Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
spellingShingle Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
author_facet Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
author_sort Idris M.S.; Zakaria I.A.; Hamzah W.A.W.
title Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
title_short Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
title_full Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
title_fullStr Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
title_full_unstemmed Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
title_sort Heat Transfer and Pressure Drop of Water Based Hybrid Al2 O3:SiO2 Nanofluids in Cooling Plate of PEMFC
publishDate 2021
container_title Journal of Advanced Research in Numerical Heat Transfer
container_volume 4
container_issue 1
doi_str_mv
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85113187139&partnerID=40&md5=949ee7a65896945974d982a5ef79f8e1
description A Proton Electrolyte Membrane fuel cells (PEMFC) is considered to be a viable alternative to Internal Combustion Engines (ICEs) in automotive applications due to the key advantages in thermal management system. The main duty of thermal management system is to maintain the desirable temperature, with a uniform temperature distribution across the stack and its individual membranes. In this paper, the thermal enhancement for two types of PEMFC cooling plates were analysed and presented. The hybrid Al₂O₃:SiO₂ was used as coolant in distributor cooling plate. The study focuses on water based 0.5% volume concentration of single Al₂O₃, single SiO₂ nanofluids, hybrid Al₂O₃:SiO nanofluids with mixture ratio of 10:90 and 50:50. The effect of different ratios of nanofluids to heat transfer enhancement and fluid flow in Reynold number range of 400 to 2000 was observed. A 3D computational fluid dynamic (CFD) was developed based on distributor cooling plates using Ansys 16.0. Positive heat transfer enhancement was obtained where the 10:90 Al₂O₃:SiO₂ nanofluids has the highest heat transfer coefficient as compared to other nanofluids used. However, all nanofluids experienced higher pressure drop. Therefore, the advantage ratio was used to analyze the effect of both heat transfer enhancements and pressure drop demerits for nanofluids adoption. The results concluded that 10:90 Al₂O₃:SiO₂ hybrid nanofluid is the most feasible candidate followed by 50:50 Al₂O₃:SiO₂ Al₂O₃ hybrid nanofluids up to fluid flow of Re1000. The positive results implied that hybrid Al₂O₃:SiO₂ nanofluids do improve the single nanofluids behaviour and has a better potential for future applications in PEMFC thermal management. © 2021, Penerbit Akademia Baru. All rights reserved.
publisher Penerbit Akademia Baru
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language English
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