Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent

abstract: Proton exchange membrane fuel cells (PEMFCs) run on pure hydrogen and oxygen (or air), producing electricity, water, and some heat. This makes PEMFC an attractive option for clean power generation. PEMFCs also operate at low temperature which makes them quick to start up and easy to handle...

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Other Authors: Arvay, Adam (Author)
Format: Dissertation
Language:English
Published: 2011
Subjects:
PEM
Online Access:http://hdl.handle.net/2286/R.I.8956
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record_format oai_dc
spelling ndltd-asu.edu-item-89562018-06-22T03:01:32Z Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent abstract: Proton exchange membrane fuel cells (PEMFCs) run on pure hydrogen and oxygen (or air), producing electricity, water, and some heat. This makes PEMFC an attractive option for clean power generation. PEMFCs also operate at low temperature which makes them quick to start up and easy to handle. PEMFCs have several important limitations which must be overcome before commercial viability can be achieved. Active areas of research into making them commercially viable include reducing the cost, size and weight of fuel cells while also increasing their durability and performance. A growing and important part of this research involves the computer modeling of fuel cells. High quality computer modeling and simulation of fuel cells can help speed up the discovery of optimized fuel cell components. Computer modeling can also help improve fundamental understanding of the mechanisms and reactions that take place within the fuel cell. The work presented in this thesis describes a procedure for utilizing computer modeling to create high quality fuel cell simulations using Ansys Fluent 12.1. Methods for creating computer aided design (CAD) models of fuel cells are discussed. Detailed simulation parameters are described and emphasis is placed on establishing convergence criteria which are essential for producing consistent results. A mesh sensitivity study of the catalyst and membrane layers is presented showing the importance of adhering to strictly defined convergence criteria. A study of iteration sensitivity of the simulation at low and high current densities is performed which demonstrates the variance in the rate of convergence and the absolute difference between solution values derived at low numbers of iterations and high numbers of iterations. Dissertation/Thesis Arvay, Adam (Author) Madakannan, Arunachalanadar (Advisor) Peng, Xihong (Committee member) Liang, Yong (Committee member) Subach, James (Committee member) Arizona State University (Publisher) Alternative Energy Engineering CFD modeling Fluent Fuel cell PEM PEMFC modeling Proton Exchange Membrane eng 95 pages M.S.Tech Chemistry 2011 Masters Thesis http://hdl.handle.net/2286/R.I.8956 http://rightsstatements.org/vocab/InC/1.0/ All Rights Reserved 2011
collection NDLTD
language English
format Dissertation
sources NDLTD
topic Alternative Energy
Engineering
CFD modeling
Fluent
Fuel cell
PEM
PEMFC modeling
Proton Exchange Membrane
spellingShingle Alternative Energy
Engineering
CFD modeling
Fluent
Fuel cell
PEM
PEMFC modeling
Proton Exchange Membrane
Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
description abstract: Proton exchange membrane fuel cells (PEMFCs) run on pure hydrogen and oxygen (or air), producing electricity, water, and some heat. This makes PEMFC an attractive option for clean power generation. PEMFCs also operate at low temperature which makes them quick to start up and easy to handle. PEMFCs have several important limitations which must be overcome before commercial viability can be achieved. Active areas of research into making them commercially viable include reducing the cost, size and weight of fuel cells while also increasing their durability and performance. A growing and important part of this research involves the computer modeling of fuel cells. High quality computer modeling and simulation of fuel cells can help speed up the discovery of optimized fuel cell components. Computer modeling can also help improve fundamental understanding of the mechanisms and reactions that take place within the fuel cell. The work presented in this thesis describes a procedure for utilizing computer modeling to create high quality fuel cell simulations using Ansys Fluent 12.1. Methods for creating computer aided design (CAD) models of fuel cells are discussed. Detailed simulation parameters are described and emphasis is placed on establishing convergence criteria which are essential for producing consistent results. A mesh sensitivity study of the catalyst and membrane layers is presented showing the importance of adhering to strictly defined convergence criteria. A study of iteration sensitivity of the simulation at low and high current densities is performed which demonstrates the variance in the rate of convergence and the absolute difference between solution values derived at low numbers of iterations and high numbers of iterations. === Dissertation/Thesis === M.S.Tech Chemistry 2011
author2 Arvay, Adam (Author)
author_facet Arvay, Adam (Author)
title Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
title_short Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
title_full Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
title_fullStr Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
title_full_unstemmed Proton Exchange Membrane Fuel Cell Modeling and Simulation using Ansys Fluent
title_sort proton exchange membrane fuel cell modeling and simulation using ansys fluent
publishDate 2011
url http://hdl.handle.net/2286/R.I.8956
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