DocumentCode
2463309
Title
Dynamic behavior and control of a tubular solid-oxide fuel cell system
Author
Hajimolana, S.A. ; Soroush, Masoud
Author_Institution
Dept. of Chem. Eng., Azad Univ. of Shahrud, Shahrud, Iran
fYear
2009
fDate
10-12 June 2009
Firstpage
2660
Lastpage
2665
Abstract
A dynamic compartmental model based on first principles is developed for a tubular solid oxide fuel cell system. The model accounts for diffusion processes, inherent impedance, transport (heat and mass transfer) processes, electrochemical processes, anode and cathode activation polarizations, and internal reforming/shifting reactions, among others. Dynamic outlet voltage, current and fuel-cell-tube temperature responses of the cell to step changes in external load resistance and conditions of feed streams are presented. Simulation results show that the fuel cell is a multi-time-scale system; some of the cell output responses exhibit consecutive apparent dominant time constants ranging from about 0.2 ms to about 40 s. They also reveal that the temperature and pressure of the inlet air stream and the temperature of the inlet fuel stream strongly affect the dynamics of the fuel cell system. A simple control system is then implemented to control the fuel cell outlet voltage and cell-tube temperature. The results show that the control system can successfully reject unmeasured step changes (disturbances) in the load resistance, the velocity of the inlet air stream, and the pressure, temperature and velocity of the inlet fuel stream.
Keywords
electrochemical sensors; power system control; pressure control; solid oxide fuel cells; temperature control; voltage control; cell-tube temperature; control system; diffusion processes; dynamic compartmental model; electrochemical processes; fuel cell outlet voltage; fuel-cell-tube temperature responses; inherent impedance; inlet fuel stream; multi-time-scale system; transport processes; tubular solid-oxide fuel cell system; Anodes; Control systems; Diffusion processes; Electrochemical processes; Fuel cells; Heat transfer; Impedance; Solid modeling; Temperature control; Voltage control;
fLanguage
English
Publisher
ieee
Conference_Titel
American Control Conference, 2009. ACC '09.
Conference_Location
St. Louis, MO
ISSN
0743-1619
Print_ISBN
978-1-4244-4523-3
Electronic_ISBN
0743-1619
Type
conf
DOI
10.1109/ACC.2009.5160052
Filename
5160052
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