Integrated braking force distribution for electric vehicle regenerative braking system

The automotive industry has made a significant contribution to everyday life by fulfilling society’s mobility needs. Traditionally, electric vehicles (EV) were introduced as an alternative to the traditional internal combustion engine (ICE) to reduce the emission, which improves air quality. The reg...

Full description

Saved in:
Bibliographic Details
Main Authors: Ghazali, Anith Khairunnisa, Hassan, Mohd Khair, Mohd Radzi, Mohd Amran, As’arry, Azizan
Format: Article
Language:English
Published: Universiti Putra Malaysia 2020
Online Access:http://psasir.upm.edu.my/id/eprint/89411/1/VEHICLE.pdf
http://psasir.upm.edu.my/id/eprint/89411/
http://www.pertanika.upm.edu.my/pjst/browse/special-issue?article=JST(S)-0567-2020
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.upm.eprints.89411
record_format eprints
spelling my.upm.eprints.894112021-09-02T09:01:57Z http://psasir.upm.edu.my/id/eprint/89411/ Integrated braking force distribution for electric vehicle regenerative braking system Ghazali, Anith Khairunnisa Hassan, Mohd Khair Mohd Radzi, Mohd Amran As’arry, Azizan The automotive industry has made a significant contribution to everyday life by fulfilling society’s mobility needs. Traditionally, electric vehicles (EV) were introduced as an alternative to the traditional internal combustion engine (ICE) to reduce the emission, which improves air quality. The regenerative braking system (RBS) technology is increasing rapidly as an alternative energy-saving solution instead of using the conventional fossil fuel process. In addition, conventional braking creates energy loss because it produces unnecessary heat during braking. Therefore, (RBS) was deliberately designed to solve these drawbacks. Several researchers have found an efficient way to recover regenerative energy, but do not pay enough attention to state-of-the-art (SOC), motor performance and overall performance. This paper designs a new braking force distribution that introduces integrated braking by combining the default ADVISOR and the new parallel braking distribution to improve the SOC battery for three driving cycles. The design of the braking part was based on the braking force distribution of vehicle speed, consisting mainly of friction and regenerative braking ratio allocation in parallel form. The suggested delivery method is evaluated by simulation and shows that the overall performance and battery life are increased. The proposed method was experimentally evaluated using ADVISOR Matlab for the efficiency and final state of the battery. Universiti Putra Malaysia 2020 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/89411/1/VEHICLE.pdf Ghazali, Anith Khairunnisa and Hassan, Mohd Khair and Mohd Radzi, Mohd Amran and As’arry, Azizan (2020) Integrated braking force distribution for electric vehicle regenerative braking system. Pertanika Journal of Social Science and Humanities, 28 (spec.2). pp. 1-10. ISSN 0128-7680; ESSN: 2231-8526 http://www.pertanika.upm.edu.my/pjst/browse/special-issue?article=JST(S)-0567-2020 10.47836/pjst.28.S2.14
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
language English
description The automotive industry has made a significant contribution to everyday life by fulfilling society’s mobility needs. Traditionally, electric vehicles (EV) were introduced as an alternative to the traditional internal combustion engine (ICE) to reduce the emission, which improves air quality. The regenerative braking system (RBS) technology is increasing rapidly as an alternative energy-saving solution instead of using the conventional fossil fuel process. In addition, conventional braking creates energy loss because it produces unnecessary heat during braking. Therefore, (RBS) was deliberately designed to solve these drawbacks. Several researchers have found an efficient way to recover regenerative energy, but do not pay enough attention to state-of-the-art (SOC), motor performance and overall performance. This paper designs a new braking force distribution that introduces integrated braking by combining the default ADVISOR and the new parallel braking distribution to improve the SOC battery for three driving cycles. The design of the braking part was based on the braking force distribution of vehicle speed, consisting mainly of friction and regenerative braking ratio allocation in parallel form. The suggested delivery method is evaluated by simulation and shows that the overall performance and battery life are increased. The proposed method was experimentally evaluated using ADVISOR Matlab for the efficiency and final state of the battery.
format Article
author Ghazali, Anith Khairunnisa
Hassan, Mohd Khair
Mohd Radzi, Mohd Amran
As’arry, Azizan
spellingShingle Ghazali, Anith Khairunnisa
Hassan, Mohd Khair
Mohd Radzi, Mohd Amran
As’arry, Azizan
Integrated braking force distribution for electric vehicle regenerative braking system
author_facet Ghazali, Anith Khairunnisa
Hassan, Mohd Khair
Mohd Radzi, Mohd Amran
As’arry, Azizan
author_sort Ghazali, Anith Khairunnisa
title Integrated braking force distribution for electric vehicle regenerative braking system
title_short Integrated braking force distribution for electric vehicle regenerative braking system
title_full Integrated braking force distribution for electric vehicle regenerative braking system
title_fullStr Integrated braking force distribution for electric vehicle regenerative braking system
title_full_unstemmed Integrated braking force distribution for electric vehicle regenerative braking system
title_sort integrated braking force distribution for electric vehicle regenerative braking system
publisher Universiti Putra Malaysia
publishDate 2020
url http://psasir.upm.edu.my/id/eprint/89411/1/VEHICLE.pdf
http://psasir.upm.edu.my/id/eprint/89411/
http://www.pertanika.upm.edu.my/pjst/browse/special-issue?article=JST(S)-0567-2020
_version_ 1710677183239815168
score 13.187333