Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC

A transient model of the cathode catalyst layer of a proton exchange membrane fuel cell is presented. The catalyst layer structure can be described as a superposition of the polymer membrane, the backing layer, and some additional platinum particles. The model, which incorporates some of the feature...

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Main Author: Genevey, Daniel Bruno
Other Authors: Mechanical Engineering
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/36286
http://scholar.lib.vt.edu/theses/available/etd-12192001-112005/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-362862020-09-29T05:39:09Z Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC Genevey, Daniel Bruno Mechanical Engineering von Spakovsky, Michael R. Olsommer, Benoit Topin, Frederic Ellis, Michael W. Nelson, Douglas J. cathode porous media electrochemical reaction butler-volmer PEFC catalyst layer A transient model of the cathode catalyst layer of a proton exchange membrane fuel cell is presented. The catalyst layer structure can be described as a superposition of the polymer membrane, the backing layer, and some additional platinum particles. The model, which incorporates some of the features of the pseudo-homogeneous models currently present in the literature, considers the kinetics of the electrochemical reaction taking place at the platinum surface, the proton transport through the polymer agglomerates, and the oxygen and water transport within the pores as well as the membrane material of the catalyst layer. Due to the lower porosity of this region and the higher liquid water content, the catalyst layer can be current limiting in the fuel cell. Furthermore, since the cost of the catalyst material is critical, it is important to have a model predicting the effective utilization of this catalyst layer as well as one, which gives insights into how it might be improved. Equations are presented for the mass conservation of reactants and products, the electrical and ionic currents, and the conservation of energy. A discussion of a number of the closure relations such as the Butler-Volmer equation employed is included as is a discussion of the initial and boundary conditions applied. The mathematical model is solved using a finite elements approach developed at the I.U.S.T.I. Master of Science 2014-03-14T20:50:21Z 2014-03-14T20:50:21Z 2001-12-17 2001-12-19 2002-12-20 2001-12-20 Thesis etd-12192001-112005 http://hdl.handle.net/10919/36286 http://scholar.lib.vt.edu/theses/available/etd-12192001-112005/ Genevey_Dec_17_2001.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic cathode
porous media
electrochemical reaction
butler-volmer
PEFC
catalyst layer
spellingShingle cathode
porous media
electrochemical reaction
butler-volmer
PEFC
catalyst layer
Genevey, Daniel Bruno
Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
description A transient model of the cathode catalyst layer of a proton exchange membrane fuel cell is presented. The catalyst layer structure can be described as a superposition of the polymer membrane, the backing layer, and some additional platinum particles. The model, which incorporates some of the features of the pseudo-homogeneous models currently present in the literature, considers the kinetics of the electrochemical reaction taking place at the platinum surface, the proton transport through the polymer agglomerates, and the oxygen and water transport within the pores as well as the membrane material of the catalyst layer. Due to the lower porosity of this region and the higher liquid water content, the catalyst layer can be current limiting in the fuel cell. Furthermore, since the cost of the catalyst material is critical, it is important to have a model predicting the effective utilization of this catalyst layer as well as one, which gives insights into how it might be improved. Equations are presented for the mass conservation of reactants and products, the electrical and ionic currents, and the conservation of energy. A discussion of a number of the closure relations such as the Butler-Volmer equation employed is included as is a discussion of the initial and boundary conditions applied. The mathematical model is solved using a finite elements approach developed at the I.U.S.T.I. === Master of Science
author2 Mechanical Engineering
author_facet Mechanical Engineering
Genevey, Daniel Bruno
author Genevey, Daniel Bruno
author_sort Genevey, Daniel Bruno
title Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
title_short Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
title_full Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
title_fullStr Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
title_full_unstemmed Transient Model of Heat,Mass,and Charge transfer as well as Electrochemistry in the Cathode Catalyst Layer of a PEMFC
title_sort transient model of heat,mass,and charge transfer as well as electrochemistry in the cathode catalyst layer of a pemfc
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/36286
http://scholar.lib.vt.edu/theses/available/etd-12192001-112005/
work_keys_str_mv AT geneveydanielbruno transientmodelofheatmassandchargetransferaswellaselectrochemistryinthecathodecatalystlayerofapemfc
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