Title :
Operating a three-phase diode rectifier with a low-input current distortion using a series-connected dual boost converter
Author_Institution :
Dept. of Electr. Eng., Alberta Univ., Edmonton, Alta., Canada
fDate :
7/1/1996 12:00:00 AM
Abstract :
This paper describes a technique for shaping the input current to a three-phase diode rectifier using a two-switch series-connected dual boost converter and a three-phase bidirectional switch circuit. Circuits are described for generating a single voltage DC output, “single DC-rail”, or a dual output DC voltage using center-tapped capacitors, “split DC-rail”. Both rectifier types can be operated with the boost inductors located either on the DC or the AC side of the rectifier. The resultant rectifier circuit configurations have an excellent immunity to the “shoot-through” fault condition and use active switching elements with low per-unit current ratings and low switching losses. These features increase the reliability factor and lower the cost penalty associated with unity fundamental power factor three-phase rectifiers. Test results are presented for the rectifiers using simulation and experimental results
Keywords :
DC-DC power convertors; capacitors; diodes; inductors; losses; power factor; rectifying circuits; reliability; switching circuits; active switching elements; boost inductors; center-tapped capacitors; cost penalty reduction; dual output DC voltage; input current shaping; low per-unit current ratings; low switching losses; low-input current distortion; rectifier circuit configurations; reliability factor increase; series-connected dual boost converter; shoot-through fault condition; single DC-rail; single voltage DC output; split DC-rail; three-phase bidirectional switch circuit; three-phase diode rectifier; two-switch series-connected dual boost converter; unity power factor three-phase rectifiers; Circuit faults; DC generators; Diodes; Inductors; Rectifiers; Switched capacitor circuits; Switches; Switching circuits; Switching converters; Voltage;
Journal_Title :
Power Electronics, IEEE Transactions on