DocumentCode :
1401375
Title :
Optimal Design of a 3.5-kV/11-kW DC–DC Converter for Charging Capacitor Banks of Power Modulators
Author :
Ortiz, Gabriel ; Bortis, Dominik ; Biela, Jürgen ; Kolar, Johann W.
Author_Institution :
Power Electron. Syst. Lab., ETH Zurich, Zürich, Switzerland
Volume :
38
Issue :
10
fYear :
2010
Firstpage :
2565
Lastpage :
2573
Abstract :
For the generation of short high-power pulses in many applications, power modulators based on capacitor discharge are used, where the peak power is drawn from the input capacitor bank. In order to continuously recharge the energy buffer during operation at a lower average power, usually, power supplies connected to the mains are used. Due to the worldwide variation in mains voltages and the desired ability to adapt the capacitor voltage of the modulator, the power supply has to support a wide input and output voltage range, whereby the supply should draw a sinusoidal current from the mains due to EMI regulations. Additionally, depending on the modulator concept, a galvanic isolation also has to be provided. In order to achieve the mentioned specifications for the considered power supply, a combination of an ac-dc and a dc-dc converter is proposed, whereas the mains voltage is rectified by a three-phase buck-boost converter to 400 Vdc, and thereafter, an isolated dc-dc converter charges the input capacitor bank of the power modulator up to 3.5 kV. This paper focuses on the basic operation and the design of the 3.5-kV/11-kW isolated dc-dc converter, which includes transformer design, efficiency-volume optimization, and component selection. In this paper, compared with the well-known flyback converter, the proposed full-bridge-based topology results in a much higher efficiency and power density.
Keywords :
AC-DC power convertors; DC-DC power convertors; capacitor storage; electromagnetic interference; AC-DC converter; DC-DC converter; EMI regulations; capacitor banks charging; capacitor discharge; flyback converter; galvanic isolation; power 11 kW; power modulators; short high-power pulses generation; three-phase buck boost converter; transformer design; voltage 3.5 kV; Design optimization; Electromagnetic interference; Galvanizing; Power capacitors; Power generation; Power supplies; Pulse generation; Pulse modulation; Pulsed power supplies; Voltage; DC–DC power conversion; HF transformers; optimal design; pulsed power supplies;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2009.2038162
Filename :
5404414
Link To Document :
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