DocumentCode :
1159439
Title :
High step-up converter with coupled-inductor
Author :
Wai, Rong-Jong ; Duan, Rou-Yong
Author_Institution :
Dept. of Electr. Eng., Yuan Ze Univ., Chung-li, Taiwan
Volume :
20
Issue :
5
fYear :
2005
Firstpage :
1025
Lastpage :
1035
Abstract :
In this study, a high step-up converter with a coupled-inductor is investigated. In the proposed strategy, a coupled inductor with a lower-voltage-rated switch is used for raising the voltage gain (whether the switch is turned on or turned off). Moreover, a passive regenerative snubber is utilized for absorbing the energy of stray inductance so that the switch duty cycle can be operated under a wide range, and the related voltage gain is higher than other coupled-inductor-based converters. In addition, all devices in this scheme also have voltage-clamped properties and their voltage stresses are relatively smaller than the output voltage. Thus, it can select low-voltage low-conduction-loss devices, and there are no reverse-recovery currents within the diodes in this circuit. Furthermore, the closed-loop control methodology is utilized in the proposed scheme to overcome the voltage drift problem of the power source under the load variations. As a result, the proposed converter topology can promote the voltage gain of a conventional boost converter with a single inductor, and deal with the problem of the leakage inductor and demagnetization of transformer for a coupled-inductor-based converter. Some experimental results via examples of a proton exchange membrane fuel cell (PEMFC) power source and a traditional battery are given to demonstrate the effectiveness of the proposed power conversion strategy.
Keywords :
DC-DC power convertors; closed loop systems; power inductors; proton exchange membrane fuel cells; snubbers; switching convertors; PEMFC; closed-loop control; coupled-inductor-based converters; high step-up converter; low-conduction-loss devices; lower-voltage-rated switch; passive regenerative snubber; power conversion strategy; proton exchange membrane fuel cell; reverse recovery; reverse-recovery currents; stray inductance; switch duty cycle; voltage drift problem; voltage stresses; voltage-clamped properties; Coupling circuits; Diodes; Inductance; Inductors; Load management; Snubbers; Stress; Switches; Switching converters; Voltage control; Battery; converter; coupled inductor; fuel cell; passive regenerative snubber; proton exchange membrane; reverse recovery;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2005.854023
Filename :
1504873
Link To Document :
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