Electrical Performance of a Solid Oxide Fuel Cell Unit with Non-Uniform Inlet Flow and High Fuel Utilization
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Electrical Performance of a Solid Oxide Fuel Cell Unit with Non-Uniform Inlet Flow and High Fuel Utilization

Authors: Ping Yuan, Mu-Sheng Chiang, Syu-Fang Liu, Shih-Bin Wang, Ming-Jun Kuo

Abstract:

This study investigates the electrical performance of a planar solid oxide fuel cell unit with cross-flow configuration when the fuel utilization gets higher and the fuel inlet flow are non-uniform. A software package in this study solves two-dimensional, simultaneous, partial differential equations of mass, energy, and electro-chemistry, without considering stack direction variation. The results show that the fuel utilization increases with a decrease in the molar flow rate, and the average current density decreases when the molar flow rate drops. In addition, non-uniform Pattern A will induce more severe happening of non-reaction area in the corner of the fuel exit and the air inlet. This non-reaction area deteriorates the average current density and then deteriorates the electrical performance to –7%.

Keywords: Performance, Solid oxide fuel cell, non-uniform, fuelutilization

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1334085

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References:


[1] Achenbach, E., "Three-dimensional and time-dependent simulation of a planar solid oxide fuel cell stack". J. Power Sources, vol. 49, pp. 333-348, 1994.
[2] Recknagle, K.P., Williford, R.E., Chick, L.A., Rector, D.R., Khaleel, M.A., "Three-dimensional thermo-fluid electrochemical modeling of planar SOFC stacks". J. Power Sources, vol. 113, pp. 109-114, 2003.
[3] Beale, S.B., Lin, Y., Zhubrin, S.V., Dong, W., "Computer methods for performance prediction in fuel cells" J. Power Sources, vol. 118, pp. 79-85, 2003.
[4] Iwata, M., Hikosaka, T., Morita, M., Iwanari, T., Ito, K., Onda, K., Esaki, Y., Sakaki, Y., Nagata, S., "Performance analysis of planar-type unit SOFC considering current and temperature distributions". Solid State Ionics, vol. 132, pp. 297-308, 20000.
[5] Yuan, P., Liu, S.F., "Numerical Analysis of Temperature and Current Density Distribution of a Planar Solid Oxide Fuel Cell Unit with Non-uniform Inlet Flow". Numerical Heat Transfer, Part A, vol. 51 pp. 941-957, 2007.
[6] Au, S.F., Blum, L., Dengel, A., Grob, B., de Haart, L.G.J., Kimmerle, K., Wolf, M., "Utilization of mine gas with a high-temperature SOFC fuel cell". Journal of Power Sources, vol. 145, pp. 582-587, 2005.
[7] Araki, T., Taniuchi, T., Sunakawa, D., Nagahama, M., Onda, K., Kato, T., "Cycle analysis of low and high H2 utilization SOFC/gas turbine combined cycle for CO2 recovery". Journal of Power Sources, vol. 171, pp. 464-470, 2007.
[8] Matsuzaki, Y., Yasuda, I., "Electrochemical oxidation of H2 and CO in a H2- H2O-CO-CO2 system at the interface of a Ni-YSZ cermet electrode and YSZ electrolyte". J. Electrochem. Soc., vol. 147, pp. 1630-1635, 2000.
[9] Chan, S.H., Khor, K.A., Xia, Z.T., "A complete polarization model of a solid oxide fuel cell and its sensitivity to the change of cell component thickness". J. Power Sources, vol. 93, pp. 130-140, 2001.