Design and optimization of powertrain system for prototype fuel cell electric vehicle

This paper reports the analysis of an automatic intelligent controller for driving a prototype fuel cell electric vehicle over different obstacles while maintaining all systems at maximum efficiency during completion of a race within a specified time. The objective is to reduce driving errors, such...

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Published in:Journal of Mechanical Engineering and Sciences
Main Author: Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
Format: Article
Language:English
Published: Universiti Malaysia Pahang 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84938599073&doi=10.15282%2fjmes.8.2015.15.0137&partnerID=40&md5=cf7af18634d66d0d6c7856dcbd410be4
id 2-s2.0-84938599073
spelling 2-s2.0-84938599073
Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
Design and optimization of powertrain system for prototype fuel cell electric vehicle
2015
Journal of Mechanical Engineering and Sciences
8

10.15282/jmes.8.2015.15.0137
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84938599073&doi=10.15282%2fjmes.8.2015.15.0137&partnerID=40&md5=cf7af18634d66d0d6c7856dcbd410be4
This paper reports the analysis of an automatic intelligent controller for driving a prototype fuel cell electric vehicle over different obstacles while maintaining all systems at maximum efficiency during completion of a race within a specified time. The objective is to reduce driving errors, such as excessive driving, or over revving the throttle while controlling the energy usage at the minimum point and improving driving skills for the Shell Eco-marathon Asia 2014 race. The vehicle is equipped with a proton exchange membrane (PEM) fuel cell system, a brush DC motor and a DC/DC converter. This prototype vehicle is a single-seater type of car and has a streamlined body shape that is designed for energy-efficiency racing where the objective is to achieve the furthest distance with the least amount of fuel in a specified time. In the design process, the car's fuel-cell efficiency, energy demand, track behavior, motor efficiency analysis, and driving control strategy need to be monitored and used to verify the designed automated intelligent controller. Experiments on the automated intelligent controller were undertaken to analyze the performance of the powertrain system for a certain given time. This powertrain system for automated intelligent controller analysis is part of the energy efficiency study of the electric vehicle. It forms the knowledge base for the next detailed energy efficiency analysis. © Universiti Malaysia Pahang, Malaysia.
Universiti Malaysia Pahang
22894659
English
Article
All Open Access; Gold Open Access
author Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
spellingShingle Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
Design and optimization of powertrain system for prototype fuel cell electric vehicle
author_facet Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
author_sort Omar S.M.H.S.; Arshad N.M.; Yassin I.M.; Fakharuzi M.H.A.M.; Ward T.A.
title Design and optimization of powertrain system for prototype fuel cell electric vehicle
title_short Design and optimization of powertrain system for prototype fuel cell electric vehicle
title_full Design and optimization of powertrain system for prototype fuel cell electric vehicle
title_fullStr Design and optimization of powertrain system for prototype fuel cell electric vehicle
title_full_unstemmed Design and optimization of powertrain system for prototype fuel cell electric vehicle
title_sort Design and optimization of powertrain system for prototype fuel cell electric vehicle
publishDate 2015
container_title Journal of Mechanical Engineering and Sciences
container_volume 8
container_issue
doi_str_mv 10.15282/jmes.8.2015.15.0137
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84938599073&doi=10.15282%2fjmes.8.2015.15.0137&partnerID=40&md5=cf7af18634d66d0d6c7856dcbd410be4
description This paper reports the analysis of an automatic intelligent controller for driving a prototype fuel cell electric vehicle over different obstacles while maintaining all systems at maximum efficiency during completion of a race within a specified time. The objective is to reduce driving errors, such as excessive driving, or over revving the throttle while controlling the energy usage at the minimum point and improving driving skills for the Shell Eco-marathon Asia 2014 race. The vehicle is equipped with a proton exchange membrane (PEM) fuel cell system, a brush DC motor and a DC/DC converter. This prototype vehicle is a single-seater type of car and has a streamlined body shape that is designed for energy-efficiency racing where the objective is to achieve the furthest distance with the least amount of fuel in a specified time. In the design process, the car's fuel-cell efficiency, energy demand, track behavior, motor efficiency analysis, and driving control strategy need to be monitored and used to verify the designed automated intelligent controller. Experiments on the automated intelligent controller were undertaken to analyze the performance of the powertrain system for a certain given time. This powertrain system for automated intelligent controller analysis is part of the energy efficiency study of the electric vehicle. It forms the knowledge base for the next detailed energy efficiency analysis. © Universiti Malaysia Pahang, Malaysia.
publisher Universiti Malaysia Pahang
issn 22894659
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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