A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles

The rapid adoption of electric vehicles (EVs) necessitates significant advancements in battery charger technologies to enhance efficiency, reliability, and integration with existing infrastructure. This paper offers a comprehensive review of current and future battery charger technologies for EVs, f...

Full description

Bibliographic Details
Published in:2024 IEEE INDUSTRIAL ELECTRONICS AND APPLICATIONS CONFERENCE, IEACON 2024
Main Authors: Baharom, Rahimi; Hayroman, Muhammad Hakiem
Format: Proceedings Paper
Language:English
Published: IEEE 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001414140200032
author Baharom
Rahimi; Hayroman
Muhammad Hakiem
spellingShingle Baharom
Rahimi; Hayroman
Muhammad Hakiem
A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
Computer Science; Engineering
author_facet Baharom
Rahimi; Hayroman
Muhammad Hakiem
author_sort Baharom
spelling Baharom, Rahimi; Hayroman, Muhammad Hakiem
A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
2024 IEEE INDUSTRIAL ELECTRONICS AND APPLICATIONS CONFERENCE, IEACON 2024
English
Proceedings Paper
The rapid adoption of electric vehicles (EVs) necessitates significant advancements in battery charger technologies to enhance efficiency, reliability, and integration with existing infrastructure. This paper offers a comprehensive review of current and future battery charger technologies for EVs, focusing on AC/DC and DC/DC converter topologies, bidirectional charging systems, and inductive charging solutions. AC/DC converters, such as bridgeless power factor correction circuits, and DC/DC converters, including boost and multilevel converters, are evaluated for their efficiency, control complexity, and thermal management. Recent innovations like the Multi-device Interleaved DC-DC Bidirectional Converter (MDIBC) and integrated onboard chargers (iOBCs) are highlighted for improving power density and compactness. Bidirectional charging, including Vehicle-to-Grid (V2G) and Grid-to-Vehicle (G2V) applications, provides flexible energy storage and grid stability. Challenges in managing bidirectional power flow, battery longevity, and grid integration are addressed with advanced control strategies and innovative converter designs. Inductive charging, or wireless power transfer (WPT), eliminates physical connectors and supports dynamic charging scenarios. The review covers enhancements in power transfer efficiency, alignment mechanisms, and control strategies, such as three-coil inductive power transfer systems and multistage constant current charging profiles. This review emphasizes the importance of advanced battery charger technologies for the sustainable growth of the EV industry, highlighting ongoing research and development to improve efficiency and integration in electric transportation infrastructure.
IEEE


2024


10.1109/IEACon61321.2024.10797305
Computer Science; Engineering

WOS:001414140200032
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001414140200032
title A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
title_short A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
title_full A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
title_fullStr A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
title_full_unstemmed A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
title_sort A Comprehensive Review on Advancements in Battery Charger Technologies for Electric Vehicles
container_title 2024 IEEE INDUSTRIAL ELECTRONICS AND APPLICATIONS CONFERENCE, IEACON 2024
language English
format Proceedings Paper
description The rapid adoption of electric vehicles (EVs) necessitates significant advancements in battery charger technologies to enhance efficiency, reliability, and integration with existing infrastructure. This paper offers a comprehensive review of current and future battery charger technologies for EVs, focusing on AC/DC and DC/DC converter topologies, bidirectional charging systems, and inductive charging solutions. AC/DC converters, such as bridgeless power factor correction circuits, and DC/DC converters, including boost and multilevel converters, are evaluated for their efficiency, control complexity, and thermal management. Recent innovations like the Multi-device Interleaved DC-DC Bidirectional Converter (MDIBC) and integrated onboard chargers (iOBCs) are highlighted for improving power density and compactness. Bidirectional charging, including Vehicle-to-Grid (V2G) and Grid-to-Vehicle (G2V) applications, provides flexible energy storage and grid stability. Challenges in managing bidirectional power flow, battery longevity, and grid integration are addressed with advanced control strategies and innovative converter designs. Inductive charging, or wireless power transfer (WPT), eliminates physical connectors and supports dynamic charging scenarios. The review covers enhancements in power transfer efficiency, alignment mechanisms, and control strategies, such as three-coil inductive power transfer systems and multistage constant current charging profiles. This review emphasizes the importance of advanced battery charger technologies for the sustainable growth of the EV industry, highlighting ongoing research and development to improve efficiency and integration in electric transportation infrastructure.
publisher IEEE
issn

publishDate 2024
container_volume
container_issue
doi_str_mv 10.1109/IEACon61321.2024.10797305
topic Computer Science; Engineering
topic_facet Computer Science; Engineering
accesstype
id WOS:001414140200032
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001414140200032
record_format wos
collection Web of Science (WoS)
_version_ 1828987783409041408