The influence of constrictivity on the effective transport properties of porous layers in electrolysis and fuel cells

被引:1
|
作者
L. Holzer
D. Wiedenmann
B. Münch
L. Keller
M. Prestat
Ph. Gasser
I. Robertson
B. Grobéty
机构
[1] ZHAW,Institute of Computational Physics ICP
[2] Zurich University of Applied Sciences,Department of Geosciences and FRIMAT
[3] University of Fribourg,School of Chemistry
[4] EMPA,undefined
[5] Swiss Federal Laboratories for Materials Testing and Research,undefined
[6] ETHZ,undefined
[7] Swiss Federal Institute of Technology Zürich,undefined
[8] University of St. Andrews,undefined
来源
关键词
Olivine; Mercury Intrusion Porosimetry; Bottleneck Effect; Electrical Impedance Spectroscopy; Constriction Factor;
D O I
暂无
中图分类号
学科分类号
摘要
The aim of the present investigation is to define microstructure parameters, which control the effective transport properties in porous materials for energy technology. Recent improvements in 3D-imaging (FIB-nanotomography, synchrotron X-ray tomography) and image analysis (skeletonization and graph analysis, transport simulations) open new possibilities for the study of microstructure effects. In this study, we describe novel procedures for a quantitative analysis of constrictivity, which characterizes the so-called bottleneck effect. In a first experimental part, methodological tests are performed using a porous (La,Sr)CoO3 material (SOFC cathode). The tests indicate that the proposed procedure for quantitative analysis of constrictivity gives reproducible results even for samples with inhomogeneous microstructures (cracks, gradient of porosity). In the second part, 3D analyses are combined with measurements of ionic conductivity by impedance spectroscopy. The investigations are preformed on membranes of electrolysis cells with porosities between 0.27 and 0.8. Surprisingly, the tortuosities remain nearly constant (1.6) for the entire range of porosity. In contrast, the constrictivities vary strongly and correlate well with the measured transport resistances. Hence, constrictivity represents the dominant microstructure parameter, which controls the effective transport properties in the analysed membrane materials. An empirical relationship is then derived for the calculation of effective transport properties based on phase volume fraction, tortuosity, and constrictivity.
引用
收藏
页码:2934 / 2952
页数:18
相关论文
共 50 条
  • [1] The influence of constrictivity on the effective transport properties of porous layers in electrolysis and fuel cells
    Holzer, L.
    Wiedenmann, D.
    Muench, B.
    Keller, L.
    Prestat, M.
    Gasser, Ph.
    Robertson, I.
    Grobety, B.
    [J]. JOURNAL OF MATERIALS SCIENCE, 2013, 48 (07) : 2934 - 2952
  • [2] Effective transport properties of the porous electrodes in solid oxide fuel cells
    Choi, H-W
    Berson, A.
    Pharoah, J. G.
    Beale, S. B.
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2011, 225 (A2) : 183 - 197
  • [3] On the influence of porous transport layers parameters on the performances of polymer electrolyte membrane water electrolysis cells
    Pushkarev, A. S.
    Pushkareva, I., V
    Solovyev, M. A.
    Prokop, M.
    Bystron, T.
    Rajagopalan, S. K.
    Bouzek, K.
    Grigoriev, S. A.
    [J]. ELECTROCHIMICA ACTA, 2021, 399
  • [4] On effective transport coefficients in PEM fuel cell electrodes: Anisotropy of the porous transport layers
    Pharoah, J. G.
    Karan, K.
    Sun, W.
    [J]. JOURNAL OF POWER SOURCES, 2006, 161 (01) : 214 - 224
  • [5] The Effects of Morphological and Wetting Properties of Porous Transport Layers on Water Movement in PEM Fuel Cells
    Medici, E. F.
    Allen, J. S.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2010, 157 (10) : B1505 - B1514
  • [6] Modeling Overpotentials Related to Mass Transport Through Porous Transport Layers of PEM Water Electrolysis Cells
    Schmidt, Gergely
    Suermann, Michel
    Bensmann, Boris
    Hanke-Rauschenbach, Richard
    Neuweiler, Insa
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (11)
  • [7] Effective Transport Coefficients for Porous Microstructures in Solid Oxide Fuel Cells
    Choi, Hae-Won
    Berson, Arganthael
    Kenney, Ben
    Pharoah, Jon G.
    Beale, Steven
    Karan, Kunal
    [J]. SOLID OXIDE FUEL CELLS 11 (SOFC-XI), 2009, 25 (02): : 1341 - 1350
  • [8] Ageing and thermal conductivity of Porous Transport Layers used for PEM Fuel Cells
    Burheim, O. S.
    Ellila, G.
    Fairweather, J. D.
    Labouriau, A.
    Kjelstrup, S.
    Pharoah, J. G.
    [J]. JOURNAL OF POWER SOURCES, 2013, 221 : 356 - 365
  • [9] Material and Morphological Heat Transfer Properties of Fuel Cell Porous Transport Layers
    Konduru, Vinaykumar
    Allen, Jeffrey S.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2017, 164 (13) : F1316 - F1322
  • [10] Low-cost porous transport layers for water electrolysis cells with polymer electrolyte membranes
    Wakayama, Hiroaki
    [J]. MATERIALS RESEARCH EXPRESS, 2024, 11 (08)