Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle

The power train efficiency of fuel cell vehicles (FCV) can be enhanced by improving the hydrogen energy utilization. Based on a mini FCV running on a 2 kW open-cathode Polymer Electrolyte Membrane (PEM) fuel cell, a waste heat recovery system design needs to be developed as an approach towards highe...

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Published in:International Journal of Integrated Engineering
Main Author: Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
Format: Article
Language:English
Published: Penerbit UTHM 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85132363861&doi=10.30880%2fijie.2022.14.02.021&partnerID=40&md5=e9232a71b74399ca3ad2b4aa0ec80001
id 2-s2.0-85132363861
spelling 2-s2.0-85132363861
Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
2022
International Journal of Integrated Engineering
14
2
10.30880/ijie.2022.14.02.021
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85132363861&doi=10.30880%2fijie.2022.14.02.021&partnerID=40&md5=e9232a71b74399ca3ad2b4aa0ec80001
The power train efficiency of fuel cell vehicles (FCV) can be enhanced by improving the hydrogen energy utilization. Based on a mini FCV running on a 2 kW open-cathode Polymer Electrolyte Membrane (PEM) fuel cell, a waste heat recovery system design needs to be developed as an approach towards higher energy efficiency. The novelty of the system is on the integration of thermoelectric generator technology with hydrogen preheating process for a combined heat and power output. This manuscript presents the proposed integrated heat regenerator (IHR) designs, analysed using numerical computational modelling. Three IHR designs were proposed where the main design criteria are (i) a minimum of 10oC hydrogen preheating degree, and (ii) non-parasitic active cooling for the Thermoelectric generator (TEG) cells. Three design concepts were studied to identify its design and performance limitations. The numerical results were validated with theoretical modelling analysis for hydrogen exit temperatures and TEG surface temperatures. The analysis on predicted fuel cell power enhancement, TEG power generation and waste heat utilization were performed by relating the temperature profiles of the hydrogen reactant and TEG surfaces to fuel cell reaction models and TEG power relationships. A compact IHR design that produced 7.7 to 8 % total power enhancement and suitable in size for a mini FCV was identified for future development works © 2022. UTHM Publisher. All rights reserved.
Penerbit UTHM
2229838X
English
Article
All Open Access; Hybrid Gold Open Access
author Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
spellingShingle Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
author_facet Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
author_sort Mohamed W.; Hamdan M.H.; Zamri N.F.; Zakaria I.A.; Mohamad M.F.; Rosli M.I.
title Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
title_short Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
title_full Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
title_fullStr Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
title_full_unstemmed Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
title_sort Integrated Heat Regenerator (IHR) Designs with Hydrogen Preheater and Thermoelectric Generator for Power Enhancement of a 2 kW Fuel Cell Vehicle
publishDate 2022
container_title International Journal of Integrated Engineering
container_volume 14
container_issue 2
doi_str_mv 10.30880/ijie.2022.14.02.021
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85132363861&doi=10.30880%2fijie.2022.14.02.021&partnerID=40&md5=e9232a71b74399ca3ad2b4aa0ec80001
description The power train efficiency of fuel cell vehicles (FCV) can be enhanced by improving the hydrogen energy utilization. Based on a mini FCV running on a 2 kW open-cathode Polymer Electrolyte Membrane (PEM) fuel cell, a waste heat recovery system design needs to be developed as an approach towards higher energy efficiency. The novelty of the system is on the integration of thermoelectric generator technology with hydrogen preheating process for a combined heat and power output. This manuscript presents the proposed integrated heat regenerator (IHR) designs, analysed using numerical computational modelling. Three IHR designs were proposed where the main design criteria are (i) a minimum of 10oC hydrogen preheating degree, and (ii) non-parasitic active cooling for the Thermoelectric generator (TEG) cells. Three design concepts were studied to identify its design and performance limitations. The numerical results were validated with theoretical modelling analysis for hydrogen exit temperatures and TEG surface temperatures. The analysis on predicted fuel cell power enhancement, TEG power generation and waste heat utilization were performed by relating the temperature profiles of the hydrogen reactant and TEG surfaces to fuel cell reaction models and TEG power relationships. A compact IHR design that produced 7.7 to 8 % total power enhancement and suitable in size for a mini FCV was identified for future development works © 2022. UTHM Publisher. All rights reserved.
publisher Penerbit UTHM
issn 2229838X
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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