Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis
Proton exchange membrane water electrolysis cells are typically operated with high water flow rates in order to guarantee the feed supply for the reaction, the hydration of the ionomer phase and to homogenize the temperature distribution. However, the influence of low flow rates on the cell behavior...
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2021-09-01
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Online Access: | https://www.mdpi.com/2077-0375/11/9/696 |
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doaj-0190d54ef2de41d0948e2c0151f94cd02021-09-26T00:40:25ZengMDPI AGMembranes2077-03752021-09-011169669610.3390/membranes11090696Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water ElectrolysisChristoph Immerz0Boris Bensmann1Richard Hanke-Rauschenbach2Institute of Electric Power Systems, Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Electric Power Systems, Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Electric Power Systems, Leibniz Universität Hannover, 30167 Hannover, GermanyProton exchange membrane water electrolysis cells are typically operated with high water flow rates in order to guarantee the feed supply for the reaction, the hydration of the ionomer phase and to homogenize the temperature distribution. However, the influence of low flow rates on the cell behavior and the cell performance cannot be fully explained. In this work, we developed a simple 1+1-dimensional mathematical model to analyze the cell polarization, current density distribution and the water flow paths inside a cell under low stoichiometry condition. The model analysis is in strong context to previous experimental findings on low water stoichiometry operations. The presented analysis shows that the low water stoichiometry can lead to dry-out at the outlet region of the anode channel, while a water splitting reaction is also present there. The simulation results show that the supply with water in this region is achieved by a net water transport from the cathode to the anode catalyst layer resulting in higher local proton resistances in the membrane and the anode catalyst layer.https://www.mdpi.com/2077-0375/11/9/6961+1-dimensional modelingproton exchange membrane water electrolysiscurrent density distributionlow stoichiometry operation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Christoph Immerz Boris Bensmann Richard Hanke-Rauschenbach |
spellingShingle |
Christoph Immerz Boris Bensmann Richard Hanke-Rauschenbach Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis Membranes 1+1-dimensional modeling proton exchange membrane water electrolysis current density distribution low stoichiometry operation |
author_facet |
Christoph Immerz Boris Bensmann Richard Hanke-Rauschenbach |
author_sort |
Christoph Immerz |
title |
Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis |
title_short |
Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis |
title_full |
Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis |
title_fullStr |
Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis |
title_full_unstemmed |
Model-Based Analysis of Low Stoichiometry Operation in Proton Exchange Membrane Water Electrolysis |
title_sort |
model-based analysis of low stoichiometry operation in proton exchange membrane water electrolysis |
publisher |
MDPI AG |
series |
Membranes |
issn |
2077-0375 |
publishDate |
2021-09-01 |
description |
Proton exchange membrane water electrolysis cells are typically operated with high water flow rates in order to guarantee the feed supply for the reaction, the hydration of the ionomer phase and to homogenize the temperature distribution. However, the influence of low flow rates on the cell behavior and the cell performance cannot be fully explained. In this work, we developed a simple 1+1-dimensional mathematical model to analyze the cell polarization, current density distribution and the water flow paths inside a cell under low stoichiometry condition. The model analysis is in strong context to previous experimental findings on low water stoichiometry operations. The presented analysis shows that the low water stoichiometry can lead to dry-out at the outlet region of the anode channel, while a water splitting reaction is also present there. The simulation results show that the supply with water in this region is achieved by a net water transport from the cathode to the anode catalyst layer resulting in higher local proton resistances in the membrane and the anode catalyst layer. |
topic |
1+1-dimensional modeling proton exchange membrane water electrolysis current density distribution low stoichiometry operation |
url |
https://www.mdpi.com/2077-0375/11/9/696 |
work_keys_str_mv |
AT christophimmerz modelbasedanalysisoflowstoichiometryoperationinprotonexchangemembranewaterelectrolysis AT borisbensmann modelbasedanalysisoflowstoichiometryoperationinprotonexchangemembranewaterelectrolysis AT richardhankerauschenbach modelbasedanalysisoflowstoichiometryoperationinprotonexchangemembranewaterelectrolysis |
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