New Mathematical Modelling and Dynamic Simulation of a Molten Carbonate Fuel Cell

Document Type : Research Paper

Authors

1 Department of Gas Engineering, Petroleum University of Technology (PUT), Ahvaz, Iran

2 Department of Chemical and Petroleum Engineering, Sharif University of Technology, Azadi Avenue

Abstract

In this study, a more accurate model of fuel cell of molten carbonate was also used that was determined input and output control variables and investigated the behavior of the system with respect to those variables. A more complete kinetic is also implemented for increasing the effectiveness of the presented paper. The input variables include fuel flow rate of cell which is methane and cell voltage. The output of the model is the flow resulting from the cell that is function of electrochemical reaction rate and accordingly, function of state variables quantities. In the following, the model in every input under change of step was simulated and analyzed dynamic behavior of cell. This indicates that as fuel flow rate into the cell is less, the productivity of fuel gets higher. Also, in the analysis of fuel cell, it has seen that temperature of molten carbonate depends strongly on the amount of combustion of compositions in the combustion chamber. As inlet concentration of methane, hydrogen and carbon monoxide is more, the heat liberated from combustion is more and system temperature gets high which results in increasing of thermal stress in molten carbonate fuel cell.

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[1] Vielstich W, Lamm A, Gasteiger HA."Handbook of fuel cells: fundamentals, technology, and applications": John Wiley & Sons; 2009.
[2] Handbook FC."EG&G technical services", Inc, Albuquerque, NM, DOE/NETL-2004/1206, 2004.
[3] Hirschenhofer J, Stauffer D, Engleman R. Fuel cells: a handbook (Revision 3). Gilbert/Commonwealth, Inc., Reading, PA (United States); 1994.
[4] Amedi HR, Bazooyar B, Pishvaie MR."Control of anode supported SOFCs (solid oxide fuel cells): Part I. mathematical modeling and state estimation within one cell", Energy, 2015, 90:605.
[5] Hill R, Scott S, Butler D, Sit SP, Burt D, Narayanan R, et al.,"Application of molten carbonate fuel cell for CO 2 capture in thermal in situ oil sands facilities", International Journal of Greenhouse Gas Control, 2015, 41:276.
[6] Lukas MD, Lee KY, Ghezel-Ayagh H."An explicit dynamic model for direct reforming carbonate fuel cell stack", Energy Conversion, IEEE Transactions on, 2001, 16:289.
[7] Ding J, Patel S, Farooque M, Maru H. A computer model for direct carbonate fuel cells.  Proceedings of the Fourth International Symposium on Carbonate Fuel Cell Technology: The Electrochemical Society; 1997. p. 127.
[8] Koh JH, Kang BS, Lim HC."Analysis of temperature and pressure fields in molten carbonate fuel cell stacks", AIChE Journal, 2001, 47:1941.
[9] Heidebrecht P, Sundmacher K."Molten carbonate fuel cell (MCFC) with internal reforming: model-based analysis of cell dynamics", Chemical Engineering Science, 2003, 58:1029.
[10] Heidebrecht P, Sundmacher K."Dynamic modeling and simulation of a countercurrent molten carbonate fuel cell (MCFC) with internal reforming", Fuel Cells, 2002, 2:166.
[11] Heidebrecht P, Sundmacher K."Dynamic model of a cross-flow molten carbonate fuel cell with direct internal reforming", Journal of the Electrochemical Society, 2005, 152:A2217.
[12] Heidebrecht P, Sundmacher K."Optimization of reforming catalyst distribution in a cross-flow molten carbonate fuel cell with direct internal reforming", Industrial & engineering chemistry research, 2005, 44:3522.
[13] Chudej K, Bauer M, Pesch H, Schittkowski K."Numerical simulation of a molten carbonate fuel cell by partial differential algebraic equations"  From Nano to Space: Springer; 2008. p. 57.
[14] Kim YJ, Chang IG, Lee TW, Chung MK."Effects of relative gas flow direction in the anode and cathode on the performance characteristics of a Molten Carbonate Fuel Cell", Fuel, 2010, 89:1019.
[15] Lee C-G. Temperature Effect on the Cell Life of Molten Carbonate Fuel Cell.  229th ECS Meeting (May 29-June 2, 2016): Ecs; 2016.
[16] Lee C-G. Effect of Electrolyte Amount on the Performance in a Molten Carbonate Fuel Cell.  229th ECS Meeting (May 29-June 2, 2016): Ecs; 2016.
[17] Law M, Liang G, Lee V, Wee S. Temperature and voltage responses of a molten carbonate fuel cell in the presence of a hydrogen fuel leakage.  IOP Conference Series: Materials Science and Engineering: IOP Publishing; 2015. p. 012022.
[18] Brouwer J, Jabbari F, Leal EM, Orr T."Analysis of a molten carbonate fuel cell: Numerical modeling and experimental validation", Journal of Power Sources, 2006, 158:213.