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Effect of Electrolyte Thickness on Electrochemical Reactions and Thermo-Fluidic Characteristics inside a SOFC Unit Cell

doi: 10.3390/en11030473
handle: 10220/47360 , 10356/103494
We investigated the effect of electrolyte thickness and operating temperature on the heat and mass transfer characteristics of solid oxide fuel cells. We conducted extensive numerical simulations to analyze single cell performance of a planar solid oxide fuel cell (SOFC) with electrolyte thicknesses from 80 to 100 μm and operating temperatures between 700 °C and 800 °C. The commercial computational fluid dynamics (CFD) code was utilized to simulate the transport behavior and electrochemical reactions. As expected, the maximum power density increased with decreasing electrolyte thickness, and the difference became significant when the current density increased among different electrolyte thicknesses at a fixed temperature. Thinner electrolytes are beneficial for volumetric power density due to lower ohmic loss. Moreover, the SOFC performance enhanced with increasing operating temperature, which substantially changed the reaction rate along the channel direction. This study can be used to help design SOFC stacks to achieve enhanced heat and mass transfer during operation.
- Chung-Ang University Korea (Republic of)
- Chung-Ang University Korea (Republic of)
- Nanyang Technological University Singapore
Computational Fluid Dynamics (CFD), Technology, solid oxide fuel cell (SOFC), operating temperature, electrolyte thickness, T, DRNTU::Engineering::Mechanical engineering, Solid Oxide Fuel Cell (SOFC), solid oxide fuel cell (SOFC); computational fluid dynamics (CFD); heat and mass transfer; electrolyte thickness; operating temperature, computational fluid dynamics (CFD), 620, :Engineering::Mechanical engineering [DRNTU], heat and mass transfer
Computational Fluid Dynamics (CFD), Technology, solid oxide fuel cell (SOFC), operating temperature, electrolyte thickness, T, DRNTU::Engineering::Mechanical engineering, Solid Oxide Fuel Cell (SOFC), solid oxide fuel cell (SOFC); computational fluid dynamics (CFD); heat and mass transfer; electrolyte thickness; operating temperature, computational fluid dynamics (CFD), 620, :Engineering::Mechanical engineering [DRNTU], heat and mass transfer
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