DocumentCode
1765488
Title
A High-Density, High-Efficiency, Isolated On-Board Vehicle Battery Charger Utilizing Silicon Carbide Power Devices
Author
Whitaker, Barbee ; Barkley, Adam ; Cole, Zach ; Passmore, Brandon ; Martin, Daniel ; McNutt, Ty R. ; Lostetter, Alexander B. ; Jae Seung Lee ; Shiozaki, Koji
Author_Institution
Arkansas Power Electron. Int. (APEI), Inc., Fayetteville, AR, USA
Volume
29
Issue
5
fYear
2014
fDate
41760
Firstpage
2606
Lastpage
2617
Abstract
This paper presents an isolated on-board vehicular battery charger that utilizes silicon carbide (SiC) power devices to achieve high density and high efficiency for application in electric vehicles (EVs) and plug-in hybrid EVs (PHEVs). The proposed level 2 charger has a two-stage architecture where the first stage is a bridgeless boost ac-dc converter and the second stage is a phase-shifted full-bridge isolated dc-dc converter. The operation of both topologies is presented and the specific advantages gained through the use of SiC power devices are discussed. The design of power stage components, the packaging of the multichip power module, and the system-level packaging is presented with a primary focus on system density and a secondary focus on system efficiency. In this work, a hardware prototype is developed and a peak system efficiency of 95% is measured while operating both power stages with a switching frequency of 200 kHz. A maximum output power of 6.1 kW results in a volumetric power density of 5.0 kW/L and a gravimetric power density of 3.8 kW/kg when considering the volume and mass of the system including a case.
Keywords
AC-DC power convertors; DC-DC power convertors; battery chargers; hybrid electric vehicles; multichip modules; power semiconductor devices; semiconductor device packaging; silicon compounds; wide band gap semiconductors; PHEV; SiC; bridgeless boost ac-dc converter; dc-dc converter; electric vehicles; frequency 200 kHz; gravimetric power density; multichip power module packaging; on-board vehicle battery charger; plug-in hybrid EV; power 6.1 kW; power devices; power stage components design; system-level packaging; volumetric power density; Batteries; Capacitance; Inductors; Silicon carbide; Switches; Topology; Zero voltage switching; AC–DC power converters; battery charger; dc–dc power converters; electric vehicles (EVs); power electronics; silicon carbide (SiC);
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2013.2279950
Filename
6587577
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