Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling

In this dissertation, novel approaches to PEMFC durability research are summarized. These efforts are significantly different from most other studies on durability in that rather than focusing on chemical degradation, more attention is given to the mechanical aspects of the PEMFC system. The tensile...

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Main Author: Liu, Dan
Other Authors: Macromolecular Science and Engineering
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/28327
http://scholar.lib.vt.edu/theses/available/etd-07182006-090606/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-283272020-09-26T05:33:59Z Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling Liu, Dan Macromolecular Science and Engineering Case, Scott W. Wilkes, Garth L. Lesko, John J. Ellis, Michael W. McGrath, James E. Durability Mechanical Properties Proton Conductivity Aging Cyclic Profile Proton Exchange Membrane Fuel Cell In this dissertation, novel approaches to PEMFC durability research are summarized. These efforts are significantly different from most other studies on durability in that rather than focusing on chemical degradation, more attention is given to the mechanical aspects of the PEMFC system. The tensile stress-strain behavior of Nafion® 117 (N117) and sulfonated poly(arylene ether sulfone) random copolymer (BPSH35) membranes is explored under ambient conditions, with respect to the effects of initial strain rate, counterion type, molecular weight and the presence of inorganic fillers. A three-dimensional "bundle-cluster" model is proposed to interpret the tensile observations, combining the concepts of elongated polymer aggregates, proton conduction channels as well as states of water. The rationale focuses on the polymer bundle rotation/interphase chain readjustment before yielding and polymer aggregates disentanglement/ reorientation after yielding. In addition, the influence of uniaxial loading on proton conductivity of N117 and BPSH35 membranes is investigated. When the membranes are stretched, their proton conductivities in the straining direction increase compared to the unstretched films, and then relax exponentially with time. The behavior is explained on the basis of the morphological variations of hydrophilic channels, accompanied by the rotation, orientation and disentanglement of the copolymer chains in the hydrophobic domains, as illustrated with the help of our bundle-cluster model. Finally, the long-term aging of hydrogen-air PEMFCs is examined with a cyclic current profile and under constant current conditions. The end-of-period diagnosis is performed for both MEAs at 100h aging intervals, including a series of cell polarization, impedance and electrochemical experiments. The results demonstrate that hydrogen crossover is the most significant result of degradation for the MEA under cyclic aging mode due to the formation of pinholes at approximately 500-600h, and mass transport limitations are the major degradation sources for constant current mode. A phenomenological mathematical model is set up to describe the PEMFC aging process under both cyclic and constant conditions. Ph. D. 2014-03-14T20:14:07Z 2014-03-14T20:14:07Z 2006-07-11 2006-07-18 2006-09-14 2006-09-14 Dissertation etd-07182006-090606 http://hdl.handle.net/10919/28327 http://scholar.lib.vt.edu/theses/available/etd-07182006-090606/ DissertationDanLiuMACR1.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Durability
Mechanical Properties
Proton Conductivity
Aging
Cyclic Profile
Proton Exchange Membrane Fuel Cell
spellingShingle Durability
Mechanical Properties
Proton Conductivity
Aging
Cyclic Profile
Proton Exchange Membrane Fuel Cell
Liu, Dan
Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
description In this dissertation, novel approaches to PEMFC durability research are summarized. These efforts are significantly different from most other studies on durability in that rather than focusing on chemical degradation, more attention is given to the mechanical aspects of the PEMFC system. The tensile stress-strain behavior of Nafion® 117 (N117) and sulfonated poly(arylene ether sulfone) random copolymer (BPSH35) membranes is explored under ambient conditions, with respect to the effects of initial strain rate, counterion type, molecular weight and the presence of inorganic fillers. A three-dimensional "bundle-cluster" model is proposed to interpret the tensile observations, combining the concepts of elongated polymer aggregates, proton conduction channels as well as states of water. The rationale focuses on the polymer bundle rotation/interphase chain readjustment before yielding and polymer aggregates disentanglement/ reorientation after yielding. In addition, the influence of uniaxial loading on proton conductivity of N117 and BPSH35 membranes is investigated. When the membranes are stretched, their proton conductivities in the straining direction increase compared to the unstretched films, and then relax exponentially with time. The behavior is explained on the basis of the morphological variations of hydrophilic channels, accompanied by the rotation, orientation and disentanglement of the copolymer chains in the hydrophobic domains, as illustrated with the help of our bundle-cluster model. Finally, the long-term aging of hydrogen-air PEMFCs is examined with a cyclic current profile and under constant current conditions. The end-of-period diagnosis is performed for both MEAs at 100h aging intervals, including a series of cell polarization, impedance and electrochemical experiments. The results demonstrate that hydrogen crossover is the most significant result of degradation for the MEA under cyclic aging mode due to the formation of pinholes at approximately 500-600h, and mass transport limitations are the major degradation sources for constant current mode. A phenomenological mathematical model is set up to describe the PEMFC aging process under both cyclic and constant conditions. === Ph. D.
author2 Macromolecular Science and Engineering
author_facet Macromolecular Science and Engineering
Liu, Dan
author Liu, Dan
author_sort Liu, Dan
title Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
title_short Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
title_full Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
title_fullStr Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
title_full_unstemmed Durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
title_sort durability study of proton exchange membrane fuel cells via experimental investigations and mathematical modeling
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/28327
http://scholar.lib.vt.edu/theses/available/etd-07182006-090606/
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