DocumentCode :
3605326
Title :
Design of Bidirectional DC–DC Resonant Converter for Vehicle-to-Grid (V2G) Applications
Author :
Zahid, Zaka Ullah ; Dalala, Zakariya M. ; Rui Chen ; Baifeng Chen ; Jih-Sheng Lai
Author_Institution :
Future Energy Electron. Center, Virginia Polytech. Inst. & State Univ., Blacksburg, VA, USA
Volume :
1
Issue :
3
fYear :
2015
Firstpage :
232
Lastpage :
244
Abstract :
In this paper, a detailed design procedure is presented for a bidirectional CLLLC-type resonant converter for a battery charging application. This converter is similar to an LLC-type resonant converter with an extra inductor and capacitor in the secondary side. Soft-switching can be ensured in all switches without additional snubber or clamp circuitry. Because of soft-switching in all switches, very high-frequency operation is possible; thus, the size of the magnetics and the filter capacitors can be made small. To reduce the size and cost of the converter, a CLLC-type resonant network is derived from the original CLLLC-type resonant network. First, in this paper, an equivalent model for the bidirectional converter is derived for the steady-state analysis. Then, the design methodology is presented for the CLLLC-type resonant converter. Design of this converter includes determining the transformer turns ratio, design of the magnetizing inductance based on zero-voltage switching condition, design of the resonant inductances and capacitances. Then, the CLLCtype resonant network is derived from the CLLLC-type resonant network. To validate the design procedure, a 3.5-kW converter was designed following the guidelines in the proposed methodology. A prototype was built and tested in the laboratory. Experimental results verified the design procedure presented.
Keywords :
DC-DC power convertors; battery powered vehicles; power grids; resonant power convertors; secondary cells; V2G applications; additional snubber; battery charging application; bidirectional CLLLC-type resonant converter; bidirectional DC-DC resonant converter; clamp circuitry; filter capacitors; high-frequency operation; power 3.5 kW; steady-state analysis; vehicle-to-grid applications; zero-voltage switching condition; Batteries; Frequency conversion; Inductance; Magnetic resonance; Switching frequency; Zero voltage switching; Battery charger; Bidirectional power flow; Design methodology; Resonant converters; bidirectional power flow; dc-dc power converters; dc???dc power converters; design methodology; resonant converters;
fLanguage :
English
Journal_Title :
Transportation Electrification, IEEE Transactions on
Publisher :
ieee
ISSN :
2332-7782
Type :
jour
DOI :
10.1109/TTE.2015.2476035
Filename :
7236927
Link To Document :
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