Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator

A thermoelectric generator (TEG) is considered a feasible option to recover waste heat from a Proton exchange membrane fuel cell (PEMFC) into electrical energy. However, its application is limited due to its low efficiency. Meanwhile, nanofluids have emerged as an alternative coolant in heat transfe...

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Published in:Journal of Mechanical Engineering
Main Author: Zailan A.A.; Zakaria I.A.; Zarizi A.N.
Format: Article
Language:English
Published: UiTM Press 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191160936&doi=10.24191%2fjmeche.v21i2.26265&partnerID=40&md5=03d570fc4aefc4d4e188ba5cd4e14308
id 2-s2.0-85191160936
spelling 2-s2.0-85191160936
Zailan A.A.; Zakaria I.A.; Zarizi A.N.
Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
2024
Journal of Mechanical Engineering
21
2
10.24191/jmeche.v21i2.26265
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191160936&doi=10.24191%2fjmeche.v21i2.26265&partnerID=40&md5=03d570fc4aefc4d4e188ba5cd4e14308
A thermoelectric generator (TEG) is considered a feasible option to recover waste heat from a Proton exchange membrane fuel cell (PEMFC) into electrical energy. However, its application is limited due to its low efficiency. Meanwhile, nanofluids have emerged as an alternative coolant in heat transfer due to their superior thermal conductivity characteristics. Thus, this study aims to improve the efficiency of the TEG using nanofluids. The experimental study was conducted on a test bench that coupled a PEMFC cooling plate and TEG which was subjected to a 0.5% volume concentration of Al2O3 : SiO2 hybrid nanofluids at a flow rate of Re 300 to 1000. The mixture ratio of Al2O3 : SiO2 hybrid nanofluids studied was 10:90 ratio, single nanofluids of Al2O3 : SiO2 and also the base fluid of water. Upon completion, the improvement in power output due to an improved temperature difference of the thermoelectric generator (TEG) is observed. The highest TEG performance was shown by hybrid nanofluids of 10:90 (Al2O3 : SiO2) with a 17% improvement as compared to the base fluid of water. This is due to the bigger temperature difference which is caused by better thermal conductivity of hybrid nanofluids as compared to the base fluid. © (2024) College of Engineering, Universiti Teknologi MARA (UiTM), Malaysia.
UiTM Press
18235514
English
Article
All Open Access; Bronze Open Access
author Zailan A.A.; Zakaria I.A.; Zarizi A.N.
spellingShingle Zailan A.A.; Zakaria I.A.; Zarizi A.N.
Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
author_facet Zailan A.A.; Zakaria I.A.; Zarizi A.N.
author_sort Zailan A.A.; Zakaria I.A.; Zarizi A.N.
title Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
title_short Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
title_full Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
title_fullStr Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
title_full_unstemmed Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
title_sort Experimental Analysis of Nanofluids in PEMFC Cooling Plate Integrated with Thermoelectric Generator
publishDate 2024
container_title Journal of Mechanical Engineering
container_volume 21
container_issue 2
doi_str_mv 10.24191/jmeche.v21i2.26265
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191160936&doi=10.24191%2fjmeche.v21i2.26265&partnerID=40&md5=03d570fc4aefc4d4e188ba5cd4e14308
description A thermoelectric generator (TEG) is considered a feasible option to recover waste heat from a Proton exchange membrane fuel cell (PEMFC) into electrical energy. However, its application is limited due to its low efficiency. Meanwhile, nanofluids have emerged as an alternative coolant in heat transfer due to their superior thermal conductivity characteristics. Thus, this study aims to improve the efficiency of the TEG using nanofluids. The experimental study was conducted on a test bench that coupled a PEMFC cooling plate and TEG which was subjected to a 0.5% volume concentration of Al2O3 : SiO2 hybrid nanofluids at a flow rate of Re 300 to 1000. The mixture ratio of Al2O3 : SiO2 hybrid nanofluids studied was 10:90 ratio, single nanofluids of Al2O3 : SiO2 and also the base fluid of water. Upon completion, the improvement in power output due to an improved temperature difference of the thermoelectric generator (TEG) is observed. The highest TEG performance was shown by hybrid nanofluids of 10:90 (Al2O3 : SiO2) with a 17% improvement as compared to the base fluid of water. This is due to the bigger temperature difference which is caused by better thermal conductivity of hybrid nanofluids as compared to the base fluid. © (2024) College of Engineering, Universiti Teknologi MARA (UiTM), Malaysia.
publisher UiTM Press
issn 18235514
language English
format Article
accesstype All Open Access; Bronze Open Access
record_format scopus
collection Scopus
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