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A Numerical Model of a Liquid-Feed Solid Polymer Electrolyte DMFC and Its Experimental Validation

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TLDR
In this article, a biphasic, multicomponent steady-state model based on phenomenological transport equations for the catalyst layer, diffusion layer, and polymeric electrolyte membrane has been developed for a liquid-feed solid polymer electrolyte direct methanol fuel cell (SPE-DMFC).
Abstract
A one-dimensional, biphasic, multicomponent steady-state model based on phenomenological transport equations for the catalyst layer, diffusion layer, and polymeric electrolyte membrane has been developed for a liquid-feed solid polymer electrolyte direct methanol fuel cell (SPE- DMFC). The model employs three important requisites: (i) implementation of analytical treatment of nonlinear terms to obtain a faster numerical solution as also to render the iterative scheme easier to converge, (ii) an appropriate description of two-phase transport phenomena in the diffusive region of the cell to account for flooding and water condensation/evaporation effects, and (iii) treatment of polarization effects due to methanol crossover. An improved numerical solution has been achieved by coupling analytical integration of kinetics and transport equations in the reaction layer, which explicitly include the effect of concentration and pressure gradient on cell polarization within the bulk catalyst layer. In particular, the integrated kinetic treatment explicitly accounts for the nonhomogeneous porous structure of the catalyst layer and the diffusion of reactants within and between the pores in the cathode. At the anode, the analytical integration of electrode kinetics has been obtained within the assumption of macrohomogeneous electrode porous structure, because methanol transport in a liquid-feed SPE- DMFC is essentially a single-phase process because of the high miscibility of methanol with water and its higher concentration in relation to gaseous reactants. A simple empirical model accounts for the effect of capillary forces on liquid-phase saturation in the diffusion layer. Consequently, diffusive and convective flow equations, comprising Nernst-Plank relation for solutes, Darcy law for liquid water, and Stefan-Maxwell equation for gaseous species, have been modified to include the capillary flow contribution to transport. To understand fully the role of model parameters in simulating the performance of the DMCF, we have carried out its parametric study. An experimental validation of model has also been carried out. (C) 2003 The Electrochemical Society.

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Citations
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Modeling transport in polymer-electrolyte fuel cells.

TL;DR: This review has highlighted the important effects that should be modeled and shown the vast complexities of transport within polymer-electrolyte fuel cells and the various ways they have been and can be modeled.
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Mass transport phenomena in direct methanol fuel cells

TL;DR: In this article, the authors present a comprehensive review of the state-of-the-art studies of mass transport of different species, including the reactants (methanol, oxygen and water) and the products (water and carbon dioxide) in DMFCs.
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An alkaline direct borohydride fuel cell with hydrogen peroxide as oxidant

TL;DR: In this article, a novel alkaline direct borohydride fuel cell (ADBFC) using varying concentrations of hydrogen peroxide as oxidant and sodium borhydride with sodium hydroxide, each of differing concentration, as fuel is reported.
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Mathematical modeling of a passive-feed DMFC with heat transfer effect

TL;DR: In this article, a passive liquid-feed direct methanol fuel cell (DMFC) with neither external liquid pumps nor gas blowers is modeled mathematically, and analytical solutions predicting the performance of this type of fuel cell operating with different methanoline concentrations are obtained.
References
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TL;DR: In this paper, the authors present a comprehensive overview of electrode processes and their application in the field of chemical simulation, including potential sweep and potential sweep methods, coupled homogeneous chemical reactions, double-layer structure and adsorption.
Journal ArticleDOI

Polymer Electrolyte Fuel Cell Model

TL;DR: In this paper, an isothermal, one-dimensional, steady-state model for a complete polymer electrolyte fuel cell (PEFC) with a 117 Nation | membrane is presented, which predicts an increase in membrane resistance with increased current density and demonstrates the great advantage of a thinner membrane in alleviating this resistance problem.
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DMFCs: From Fundamental Aspects to Technology Development

TL;DR: In this paper, a review of recent developments in both the fundamental and technological aspects of direct methanol fuel cells (DMFCs) is presented, where the authors focus on the electrocatalysis of the methanoline oxidation reaction and oxygen electroreduction.
Journal ArticleDOI

A Mathematical Model of the Solid‐Polymer‐Electrolyte Fuel Cell

TL;DR: In this article, a mathematical model of the solid polymer-electrolyte fuel cell is presented to investigate factors that limit cell performance and elucidate the mechanism of species transport in the complex network of gas, liquid, and solid phases of the cell.
Journal ArticleDOI

Methanol electrooxidation on well-characterized platinum-ruthenium bulk alloys

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