Title :
Mathematical modeling and steady-state analysis of a co-ionic-conducting solid oxide fuel cell
Author :
Bavarian, Mohammad ; Soroush, Masoud ; Kevrekidis, I.G. ; Benziger, J.B.
Author_Institution :
Dept. of Chem. & Biol. Eng., Drexel Univ., Philadelphia, PA, USA
Abstract :
A mathematical model of a solid oxide fuel cell (SOFC) with a BaCe1-xSmxO3-α type electrolyte is developed. This class of electrolytes exhibits both proton and oxygen-anion conductivity. To develop the model, heat transfer, mass transfer and electrochemical processes are taken into account. The existence of steady-state multiplicity in this class of fuel cells is investigated under three operation modes: constant ohmic load, potentiostatic and galvanostatic. The cell has up to three steady states under the constant ohmic load and potentiostatic modes, and a unique steady state under the galvanostatic mode. This same steady state behavior has been observed in oxygen-anion conducting and proton conducting SOFCs. Interestingly, this study shows that in this class of SOFCs, thermal and concentration multiplicities can coexist; ignition in the solid temperature is accompanied by extinction in the fuel and oxygen concentrations, and ignition and extinction in concentrations of water in the anode and cathode sides, respectively.
Keywords :
barium compounds; cerium compounds; electrochemical electrodes; electrolytes; heat transfer; ionic conductivity; mass transfer; samarium compounds; solid oxide fuel cells; BaCe1-xSmxO3-α; SOFC; anode; cathode; co-ionic-conducting solid oxide fuel cell; concentration multiplicity; constant ohmic load; electrochemical processes; electrolyte; galvanostatic mode; heat transfer; mass transfer; mathematical modeling; oxygen concentrations; oxygen-anion conductivity; potentiostatic modes; proton conducting SOFC; proton conductivity; solid temperature; steady state behavior; steady-state multiplicity analysis; thermal multiplicity; Anodes; Cathodes; Conductivity; Equations; Mathematical model; Protons; Steady-state;
Conference_Titel :
American Control Conference (ACC), 2012
Conference_Location :
Montreal, QC
Print_ISBN :
978-1-4577-1095-7
Electronic_ISBN :
0743-1619
DOI :
10.1109/ACC.2012.6314973