Three-dimensional optimisation of a fuel gas channel of a proton exchange membrane fuel cell for maximum current density

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dc.contributor.author Obayopo, Surajudeen Olanrewaju
dc.contributor.author Bello-Ochende, Tunde
dc.contributor.author Meyer, Josua P.
dc.date.accessioned 2014-11-04T11:31:16Z
dc.date.available 2014-11-04T11:31:16Z
dc.date.issued 2013-03
dc.description.abstract Proton exchange membrane (PEM) fuel cells operated with hydrogen and air offer promising alternative to conventional fossil fuel sources for transport and stationary applications due to its high efficiency, low-temperature operation, high power density, fast start-up and potable power for mobile application. Power levels derivable from this class of fuel cell depend on the operating parameters. In this study, a threedimensional numerical optimisation of the effect of operating and design parameters of PEM fuel cell performance was developed. The model computational domain includes an anode flow channel, membrane electrode assembly (MEA) and a cathode flow channel. The continuity, momentum, energy, and species conservation equations describing the flow and species transport of the gas mixture in the coupled gas channels and the electrodes were numerically solved using a computational fluid dynamics (CFD) code. The effects of several key parameters, including channel geometries (width and depth), flow orientation and gas diffusion layer (GDL) porosity on performance and species distribution in a typical fuel cell system have been studied. Numerical results of the effect of flow rate and gas diffusion layer porosity on the flow channel optimal configurations for PEM fuel cell are reported. Simulations were done ranging from 0.6 to 1.6 mm for channel width, 0.5 to 3.0 mm for channel depth and 0.1 to 0.7 for the GDL porosity. Results were evaluated at 0.3 V operating cell voltage of the PEM fuel cell. The optimisation results show that the optimum dimension values for channel depth and channel width are 2.0 and 1.2 mm, respectively. In addition, the results indicate that effective design of fuel gas channel in combination with the reactant species flow rate and GDL porosity enhances the performance of the fuel cell. The numerical results computed agree well with experimental data in the literature. Consequently, the results obtained provide useful information for improving the design of fuel cells. en_US
dc.description.librarian hb2014 en_US
dc.description.sponsorship National Research Foundation and the Solar Hub between the University of Pretoria and Stellenbosch which is supported by the Department of Energy. en_US
dc.description.uri http://onlinelibrary.wiley.com/journal/10.1002/(ISSN)1099-114X en_US
dc.identifier.citation Obayopo, SO, Bello-Ochende, T & Meyer, JP 2013, 'Three-dimensional optimisation of a fuel gas channel of a proton exchange membrane fuel cell for maximum current density', International Journal of Energy Research, vol. 37, no. 3, pp. 228-241. en_US
dc.identifier.issn 0363-907X (print)
dc.identifier.issn 1099-114X (online)
dc.identifier.other 10.1002/er.1935
dc.identifier.uri http://hdl.handle.net/2263/42492
dc.language.iso en en_US
dc.publisher Wiley en_US
dc.rights © 2011 John Wiley & Sons, Ltd. This is the pre-peer reviewed version of the following article : Three-dimensional optimisation of a fuel gas channel of a proton exchange membrane fuel cell for maximum current density, International Journal of Energy Research, vol. 37, no. 3, pp. 228-241, 2013. doi : 10.1002/er.1935. The definite version is available at : http://onlinelibrary.wiley.com/journal/10.1111/(ISSN)1439-037X. en_US
dc.subject Fuel cells en_US
dc.subject Computational fluid dynamics en_US
dc.subject Optimisation en_US
dc.subject Geometry en_US
dc.subject Flow orientation en_US
dc.subject Optimal performance en_US
dc.subject Proton exchange membrane (PEM) en_US
dc.subject Gas diffusion layer (GDL) en_US
dc.title Three-dimensional optimisation of a fuel gas channel of a proton exchange membrane fuel cell for maximum current density en_US
dc.type Postprint Article en_US


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