DocumentCode :
149149
Title :
Large-scale cold start simulations for automotive fuel cells
Author :
Ahrae Jo ; Ko, Jiweon ; Hyunchul Ju ; Sungho Lee
Author_Institution :
Sch. of Mech. Eng., Inha Univ., Incheon, South Korea
fYear :
2014
fDate :
25-27 March 2014
Firstpage :
1
Lastpage :
6
Abstract :
In this study, the three-dimensional (3-D) transient cold start model is applied to the real-scale polymer electrolyte fuel cell (PEFC) geometry and transient cold-start simulations are carried out from subzero to normal temperatures. In order to reduce the computational turnaround time involving a large numerical mesh with millions of grid points, the cold start code is parallelized for parallel computing. The simulation results clearly show the evolution of ice, water content, temperature, and current density contours at different cold start stages characterizing freezing, melting, hydration, and dehydration processes. In addition, the model predictions emphasize beneficial influence of vapor phase diffusion from the cathode catalyst layer (CL) to gas diffusion layer (GDL) during cold start, which can contribute to reducing the amount of ice accumulation in the cathode CL. As the effect of vapor phase diffusion is substantial, more ice is accumulated in the cathode GDL rather than in the cathode CL. Therefore, the total amount of ice accumulated inside a cell is not always proportional to the amount of ice in the cathode CL, depending on the strength of vapor phase diffusion.
Keywords :
automotive electrics; catalysts; electrochemical electrodes; freezing; numerical analysis; power engineering computing; proton exchange membrane fuel cells; 3-D; CL; GDL; PEFC; automotive fuel cell; cathode catalyst layer; cold start code; computational turnaround time; freezing; gas diffusion layer; grid point; ice accumulation; large-scale cold start simulation; numerical mesh; parallel computing; polymer electrolyte fuel cell; subzero temperature; three-dimensional transient cold start model; vapor phase diffusion; Anodes; Cathodes; Computational modeling; Fuel cells; Ice; Numerical models; Water; ice accumulation; ice freezing; ice melting; transient cold start simulations; vapor phase diffusion;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Renewable Energy Congress (IREC), 2014 5th International
Conference_Location :
Hammamet
Print_ISBN :
978-1-4799-2196-6
Type :
conf
DOI :
10.1109/IREC.2014.6826906
Filename :
6826906
Link To Document :
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