In the present study, the results of the numerical implementation of a mathematical model of a planar, anode-supported SOFC are reported. The mathematical model is solved in a 3D environment, and is validated by comparison with three different polarization curves, obtained at different operating conditions. The results show the importance of some tridimensional phenomena and their effect on the fuel cell performance. In particular, in-plane diffusion within the electrodes and non-uniform gas distribution within the gas channels are identified and analyzed. (C) 2007 International Association for Hydrogen Energy. Published by Elsevier Ltd. All rights reserved
Spatially inhomogeneous distribution of current density and temperature in solid oxide fuel cells (S...
This paper reports a new electrochemical performance study performed on a planar SOFC cell. This stu...
A 3D mathematical model is developed to study effects of various geometrical parameters such as cath...
In the present study, the results of the numerical implementation of a mathematical model of a plana...
In the present study, the results of the numerical implementation of a mathematical model of a plana...
A three-dimensional computational fluid dynamics model was developed to study the performance of a p...
A quasi-two-dimensional physically-based model for the description of transport and reaction in plan...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed and applied...
Fuel cells can be used to provide power for most electrical or electronic devices designed for opera...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed for an anod...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed for an anod...
Spatially inhomogeneous distributions of current density and temperature in solid oxide fuel cells (...
A mathematical model has been developed to simulate the field distributions in a single planar solid...
This paper presents a numerical model for a planar solid oxide fuel cell (SOFC) with mixed ionic-ele...
The aim of this work is to analyze the hydrodynamic/electrochemical performance of a solid oxide fue...
Spatially inhomogeneous distribution of current density and temperature in solid oxide fuel cells (S...
This paper reports a new electrochemical performance study performed on a planar SOFC cell. This stu...
A 3D mathematical model is developed to study effects of various geometrical parameters such as cath...
In the present study, the results of the numerical implementation of a mathematical model of a plana...
In the present study, the results of the numerical implementation of a mathematical model of a plana...
A three-dimensional computational fluid dynamics model was developed to study the performance of a p...
A quasi-two-dimensional physically-based model for the description of transport and reaction in plan...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed and applied...
Fuel cells can be used to provide power for most electrical or electronic devices designed for opera...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed for an anod...
In this study, a three-dimensional computational fluid dynamics (CFD) model is developed for an anod...
Spatially inhomogeneous distributions of current density and temperature in solid oxide fuel cells (...
A mathematical model has been developed to simulate the field distributions in a single planar solid...
This paper presents a numerical model for a planar solid oxide fuel cell (SOFC) with mixed ionic-ele...
The aim of this work is to analyze the hydrodynamic/electrochemical performance of a solid oxide fue...
Spatially inhomogeneous distribution of current density and temperature in solid oxide fuel cells (S...
This paper reports a new electrochemical performance study performed on a planar SOFC cell. This stu...
A 3D mathematical model is developed to study effects of various geometrical parameters such as cath...