DocumentCode :
132510
Title :
A current-fed asymmetric LLCC resonant converter for DBD applications
Author :
Shiqiang Hao ; Chi Zhang ; Tangtang Guo ; Xingliang Liu ; Sideng Hu ; Jun Liu ; Xiangning He
Author_Institution :
Coll. of Electr. Eng., Zhejiang Univ. Hangzhou, Hangzhou, China
fYear :
2014
fDate :
16-20 March 2014
Firstpage :
873
Lastpage :
878
Abstract :
In this paper, a current-fed asymmetric full-bridge LLCC resonant converter is proposed for the dielectric barrier discharge (DBD) applied to the surface treatment. Compared with a previous design, the asymmetric structure with no front-end buck circuit and only two reverse-voltage blocking diodes is adopted to reduce the component count and circuit complexity. Moreover, the phase-shift control of this asymmetric full-bridge circuit is employed to regulate the AC output voltage across the DBD load. The leading switches realize ZCS by monitoring the energy of the resonant tank at the very beginning of the overlapping time of the gate signals. The lagging switches achieve ZVS by adjusting the change rate of the voltage across these switches through three small auxiliary capacitors. The method of rectifier compensated first harmonic approximation (RCFHA) is utilized to derive a curve of the transformer turn ratio and equivalent inductance, which reduces the design complexity caused by the magnetic integration technique. The experimental results from a 500W prototype are provided to verify the effectiveness of the proposed converter.
Keywords :
bridge circuits; discharges (electric); resonant power convertors; voltage control; zero current switching; zero voltage switching; AC output voltage regulation; RCFHA; ZCS; ZVS; asymmetric full-bridge circuit; circuit complexity; current fed asymmetric LLCC resonant converter; design complexity; dielectric barrier discharge; front-end buck circuit; lagging switches; phase-shift control; power 500 W; rectifier compensated first harmonic approximation; reverse-voltage blocking diodes; surface treatment; transformer turn ratio; zero current switching; zero voltage switching; Capacitance; Capacitors; Discharges (electric); Inductance; Logic gates; Zero current switching; Zero voltage switching;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applied Power Electronics Conference and Exposition (APEC), 2014 Twenty-Ninth Annual IEEE
Conference_Location :
Fort Worth, TX
Type :
conf
DOI :
10.1109/APEC.2014.6803410
Filename :
6803410
Link To Document :
بازگشت