DocumentCode
1087743
Title
Design of a Wide Input Range DC–DC Converter With a Robust Power Control Scheme Suitable for Fuel Cell Power Conversion
Author
Todorovic, Maja Harfman ; Palma, Leonardo ; Enjeti, Prasad N.
Author_Institution
Texas A&M Univ., College Station
Volume
55
Issue
3
fYear
2008
fDate
3/1/2008 12:00:00 AM
Firstpage
1247
Lastpage
1255
Abstract
In this paper, an analysis and design of a wide input range dc-dc converter is proposed along with a robust power control scheme. The proposed converter and its control are designed to be compatible with a fuel cell power source, which exhibits 2 : 1 voltage variation as well as a slow transient response. The proposed approach consists of two stages: a three-level boost converter stage cascaded with a current-fed two-inductor boost converter topology, which has a higher voltage gain and provides galvanic isolation from the input source. The function of the front-end boost converter stage is to maintain a constant voltage at the input of the cascaded dc-dc converter to ensure optimal performance characteristics and high efficiency. At the output of the first boost converter, a battery or ultracapacitor energy storage is connected to handle slow transient response of the fuel cell (200 W/min). The robust features of the proposed control system ensure a constant output dc voltage for a variety of load fluctuations, thus limiting the power being delivered by the fuel cell during a load transient. Moreover, the proposed configuration simplifies power management and can interact with the fuel cell controller. Simulation and the experimental results confirm the feasibility of the proposed system.
Keywords
DC-DC power convertors; fuel cells; power control; DC-DC converter; current-fed two-inductor boost converter topology; fuel cell power conversion; robust power control scheme; three-level boost converter stage; Batteries; DC-DC power converters; Fuel cells; Galvanizing; Power control; Power conversion; Robust control; Topology; Transient response; Voltage control; Battery; DC–DC power conversion; current control; energy storage; fuel cells; hybrid power source; supercapacitors;
fLanguage
English
Journal_Title
Industrial Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0278-0046
Type
jour
DOI
10.1109/TIE.2007.911200
Filename
4459838
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