Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell
Gas diffusion layers (GDLs) play a significant role in the efficient operation of high-temperature polymer electrolyte fuel cells. They connect the electrodes to the gas channels of the bipolar plate by porous material with a meso-scale geometric structure. The electrodes must be sufficiently suppli...
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doaj-7e4cf467215842f0bf0d14fd1ed0e98e2020-11-24T22:59:55ZengMDPI AGApplied Sciences2076-34172018-12-01812253610.3390/app8122536app8122536Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel CellDieter Froning0Junliang Yu1Uwe Reimer2Werner Lehnert3Forschungszentrum Jülich GmbH, Institute of Energy and Climate Research, IEK-3: Electrochemical Process Engineering, D-52425 Jülich, GermanyForschungszentrum Jülich GmbH, Institute of Energy and Climate Research, IEK-3: Electrochemical Process Engineering, D-52425 Jülich, GermanyForschungszentrum Jülich GmbH, Institute of Energy and Climate Research, IEK-3: Electrochemical Process Engineering, D-52425 Jülich, GermanyForschungszentrum Jülich GmbH, Institute of Energy and Climate Research, IEK-3: Electrochemical Process Engineering, D-52425 Jülich, GermanyGas diffusion layers (GDLs) play a significant role in the efficient operation of high-temperature polymer electrolyte fuel cells. They connect the electrodes to the gas channels of the bipolar plate by porous material with a meso-scale geometric structure. The electrodes must be sufficiently supplied by gases from the channels to operate fuel cells efficiently. Furthermore, reaction products must be transported in the other direction. The gas transport is simulated in the through-plane direction of the GDL, and its microstructure created by a stochastic model is equivalent to the structure of real GDL material. Continuum approaches in cell-scale simulations have model parameters for porous regions that can be taken from effective properties calculated from the meso-scale simulation results, as one feature of multi-scale simulations. Another significant issue in multi-scale simulations is the interface between two regions. The focus is on the gas flow at the interface between GDL and the gas channel, which is analyzed using statistical methods. Quantitative relationships between functionality and microstructure can be detected. With this approach, virtual GDL materials can possibly be designed with improved transport properties. The evaluation of the surface flow with stochastic methods offers substantiated benefits that are suitable for connecting the meso-scale to larger spatial scales.https://www.mdpi.com/2076-3417/8/12/2536HT-PEFCGDL/channel interfacelattice Boltzmannstochastic modelingupscaling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Dieter Froning Junliang Yu Uwe Reimer Werner Lehnert |
spellingShingle |
Dieter Froning Junliang Yu Uwe Reimer Werner Lehnert Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell Applied Sciences HT-PEFC GDL/channel interface lattice Boltzmann stochastic modeling upscaling |
author_facet |
Dieter Froning Junliang Yu Uwe Reimer Werner Lehnert |
author_sort |
Dieter Froning |
title |
Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell |
title_short |
Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell |
title_full |
Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell |
title_fullStr |
Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell |
title_full_unstemmed |
Stochastic Analysis of the Gas Flow at the Gas Diffusion Layer/Channel Interface of a High-Temperature Polymer Electrolyte Fuel Cell |
title_sort |
stochastic analysis of the gas flow at the gas diffusion layer/channel interface of a high-temperature polymer electrolyte fuel cell |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2018-12-01 |
description |
Gas diffusion layers (GDLs) play a significant role in the efficient operation of high-temperature polymer electrolyte fuel cells. They connect the electrodes to the gas channels of the bipolar plate by porous material with a meso-scale geometric structure. The electrodes must be sufficiently supplied by gases from the channels to operate fuel cells efficiently. Furthermore, reaction products must be transported in the other direction. The gas transport is simulated in the through-plane direction of the GDL, and its microstructure created by a stochastic model is equivalent to the structure of real GDL material. Continuum approaches in cell-scale simulations have model parameters for porous regions that can be taken from effective properties calculated from the meso-scale simulation results, as one feature of multi-scale simulations. Another significant issue in multi-scale simulations is the interface between two regions. The focus is on the gas flow at the interface between GDL and the gas channel, which is analyzed using statistical methods. Quantitative relationships between functionality and microstructure can be detected. With this approach, virtual GDL materials can possibly be designed with improved transport properties. The evaluation of the surface flow with stochastic methods offers substantiated benefits that are suitable for connecting the meso-scale to larger spatial scales. |
topic |
HT-PEFC GDL/channel interface lattice Boltzmann stochastic modeling upscaling |
url |
https://www.mdpi.com/2076-3417/8/12/2536 |
work_keys_str_mv |
AT dieterfroning stochasticanalysisofthegasflowatthegasdiffusionlayerchannelinterfaceofahightemperaturepolymerelectrolytefuelcell AT junliangyu stochasticanalysisofthegasflowatthegasdiffusionlayerchannelinterfaceofahightemperaturepolymerelectrolytefuelcell AT uwereimer stochasticanalysisofthegasflowatthegasdiffusionlayerchannelinterfaceofahightemperaturepolymerelectrolytefuelcell AT wernerlehnert stochasticanalysisofthegasflowatthegasdiffusionlayerchannelinterfaceofahightemperaturepolymerelectrolytefuelcell |
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