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Mathematical model of a gas diffusion electrode bonded to a polymer electrolyte

AIChE Journal · 1991 · Vol. 37(8) · pp. 1151–1163
Dawn M. BernardiMark W. Verbrugge

Abstract

Abstract A mathematical model for an ion‐exchange membrane attached to a gas‐fed porous electrode is derived and discussed. The model is applied to simulate the oxygen electrode of a polymer‐electrolyte fuel cell. Our discussion focuses on cell polarization characteristics, water transport, and catalyst utilization—all of which must be considered for fuel‐cell design. Calculated polarization behavior is shown to compare favorably with published experimental data. Our results indicate that if the membrane maintains full saturation, its contribution to the total cell resistance is most significant at higher operating current densities (greater than 200 mA/cm 2 ). Polarization resistance due to the oxygen reduction reaction appears to be important for all practical current densities. Water transport, driven by pressure and electric‐potential forces, is shown to be a complicated function of the cell operating conditions. The utilization and distribution of noble‐metal catalyst is discussed.

Fuel Cells and Related MaterialsElectrocatalysts for Energy ConversionConducting polymers and applicationsElectrolytePolarization (electrochemistry)Concentration polarizationElectrodeChemistryPolymerProton exchange membrane fuel cellGas diffusion electrodeGaseous diffusionMembrane
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841
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Journal of the American Chemical Society · 1955 · 3,873 citations
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Annals of Internal Medicine · 1973 · 2,573 citations
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