An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator

This study presents an integrated heat recovery-proton exchange membrane (IHR-PEM) fuel cell system designed for lightweight vehicles powered by a 2 kW PEM fuel cell. The IHR system captures waste heat through multiple heat exchangers and integrates thermoelectric generator (TEG) modules for electri...

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Published in:Fuel Cells
Main Author: Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
Format: Article
Language:English
Published: John Wiley and Sons Ltd 2025
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85216215333&doi=10.1002%2ffuce.202400037&partnerID=40&md5=a78f2dd18af5600aea768cb3c5f66857
id 2-s2.0-85216215333
spelling 2-s2.0-85216215333
Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
2025
Fuel Cells
25
1
10.1002/fuce.202400037
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85216215333&doi=10.1002%2ffuce.202400037&partnerID=40&md5=a78f2dd18af5600aea768cb3c5f66857
This study presents an integrated heat recovery-proton exchange membrane (IHR-PEM) fuel cell system designed for lightweight vehicles powered by a 2 kW PEM fuel cell. The IHR system captures waste heat through multiple heat exchangers and integrates thermoelectric generator (TEG) modules for electrical regeneration and hydrogen preheating, enhancing PEM fuel cell performance. Utilizing the temperature gradient between the fuel cell's exhaust and the ambient environment, the system effectively converts waste heat into electrical energy, improving energy efficiency. Experimental evaluation under various operating parameters, including cruising speeds, PEM fuel cell loads, rejuvenation conditions, and electrical regeneration strategies, demonstrated the system's effectiveness. Results revealed waste heat absorption of up to 8.5 W and hydrogen preheating by 19°C, leading to an 11.5% increase in electrical power production and a maximum PEM fuel cell efficiency improvement of 11%. This study advances waste heat recovery (WHR) technologies in fuel cell-based transportation, significantly improving energy efficiency and reducing carbon emissions. The findings provide valuable insights into the integration of regenerative WHR systems for lightweight vehicles, fostering the development of sustainable and energy-efficient transportation solutions. © 2025 Wiley-VCH GmbH.
John Wiley and Sons Ltd
16156846
English
Article

author Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
spellingShingle Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
author_facet Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
author_sort Hamdan M.H.; Mohamed W.A.N.W.; Aminudin M.A.; Kamarudin S.K.; Zakaria I.A.; Singh B.
title An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
title_short An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
title_full An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
title_fullStr An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
title_full_unstemmed An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
title_sort An Integrated Heat Recovery System Design for a Fuel Cell Buggy With Hydrogen Preheating and Thermoelectric Generator
publishDate 2025
container_title Fuel Cells
container_volume 25
container_issue 1
doi_str_mv 10.1002/fuce.202400037
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85216215333&doi=10.1002%2ffuce.202400037&partnerID=40&md5=a78f2dd18af5600aea768cb3c5f66857
description This study presents an integrated heat recovery-proton exchange membrane (IHR-PEM) fuel cell system designed for lightweight vehicles powered by a 2 kW PEM fuel cell. The IHR system captures waste heat through multiple heat exchangers and integrates thermoelectric generator (TEG) modules for electrical regeneration and hydrogen preheating, enhancing PEM fuel cell performance. Utilizing the temperature gradient between the fuel cell's exhaust and the ambient environment, the system effectively converts waste heat into electrical energy, improving energy efficiency. Experimental evaluation under various operating parameters, including cruising speeds, PEM fuel cell loads, rejuvenation conditions, and electrical regeneration strategies, demonstrated the system's effectiveness. Results revealed waste heat absorption of up to 8.5 W and hydrogen preheating by 19°C, leading to an 11.5% increase in electrical power production and a maximum PEM fuel cell efficiency improvement of 11%. This study advances waste heat recovery (WHR) technologies in fuel cell-based transportation, significantly improving energy efficiency and reducing carbon emissions. The findings provide valuable insights into the integration of regenerative WHR systems for lightweight vehicles, fostering the development of sustainable and energy-efficient transportation solutions. © 2025 Wiley-VCH GmbH.
publisher John Wiley and Sons Ltd
issn 16156846
language English
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