DocumentCode
24563
Title
Development of an HT PEM Fuel Cell Emulator Using a Multiphase Interleaved DC–DC Converter Topology
Author
De Beer, Chris ; Barendse, Paul ; Khan, Azeem
Author_Institution
Dept. of Electr. Eng., Univ. of Cape Town, Cape Town, South Africa
Volume
28
Issue
3
fYear
2013
fDate
Mar-13
Firstpage
1120
Lastpage
1131
Abstract
This paper presents a new emulator topology for a high-temperature (HT) proton-exchange membrane (PEM) fuel cell (FC). Emulators are used to predict FC behavior and facilitate development of the power-conditioning subsystems. In this paper, the high-temperature system is modeled and emulated both in the steady state and transient domains. The model is tailored to operate effectively in real time on the emulator hardware and to deliver acceptable performance during steady-state and dynamic conditions. In particular, a two-stage approach is applied to the design of the emulator hardware. The first stage is based on a multiphase interleaved converter, capable of maximizing ripple cancellation, while ensuring rapid dynamic performance through the use of reduced filter components. These benefits are only apparent by operating the converter at its critical duty ratio. This is achieved through the introduction of a power-stage converter, which tracks the steady-state behavior of the FC, allowing the multiphase converter to account for the rapid transient behavior. This operating principle improves the quality of the output dc voltage and dynamic performance beyond that achieved by conventional emulator topologies. The experimental results of the FC stack, HT PEM FC model and emulator are presented to confirm the performance of the proposed system.
Keywords
DC-DC power convertors; proton exchange membrane fuel cells; FC stack; HT PEMFC emulator; HT PEMFC model; emulator hardware; high-temperature proton-exchange membrane fuel cell; multiphase interleaved DC-DC converter topology; power-conditioning subsystems; power-stage converter; reduced filter components; transient domains; two-stage approach; Capacitance; Fuel cells; Steady-state; Topology; Transfer functions; Transient analysis; Voltage control; Converter; emulation; fuel cell (FC); multiphase;
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2012.2208481
Filename
6238380
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