Title
Resonant Dual Active Bridge Partial Power Converter for Electric Vehicle Fast Charging Stationsxmlui.dri2xhtml.METS-1.0.item-contributorOtherinstitution
https://ror.org/012a91z28Version
http://purl.org/coar/version/c_ab4af688f83e57aa
Rights
© 2021 IEEEAccess
http://purl.org/coar/access_right/c_abf2Publisher’s version
https://doi.org/10.1109/VPPC53923.2021.9699166Published at
2021 IEEE Vehicle Power and Propulsion Conference (VPPC) 25-28 de Octubre 2021Publisher
IEEEKeywords
Soft switching
Switching loss
Bridge circuits
Voltage ... [+]
Switching loss
Bridge circuits
Voltage ... [+]
Soft switching
Switching loss
Bridge circuits
Voltage
Resonant converters
Zero voltage switching
Charging stations [-]
Switching loss
Bridge circuits
Voltage
Resonant converters
Zero voltage switching
Charging stations [-]
Abstract
This paper presents an analysis and design of a DC-DC charging unit for an electric vehicle fast charging station. Due to the benefits that partial power processing achieves in terms of size reduction ... [+]
This paper presents an analysis and design of a DC-DC charging unit for an electric vehicle fast charging station. Due to the benefits that partial power processing achieves in terms of size reduction and efficiency improvement, it is decided to implement a partial power converter architecture. This type of architectures reduce the power to be processed by the converter, but they require an isolated topology. Therefore, a dual active bridge series resonant converter is selected for the study due to its benefits in terms of soft switching conditions. Design wise, it is decided to ensure zero voltage switching at the secondary side of the converter. Indeed, one of the benefits of the implemented partial power converter is the reduced voltage that exists at the primary side. This way, lower voltage overshoots and switching losses are expected. Finally, via simulations, it is confirmed that partial power processing can be achieved with a resonant converter and that zero voltage switching operation is ensured at the secondary side through the entire charging process. [-]