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dc.contributor.authorKeller, Lukas M.-
dc.contributor.authorHolzer, Lorenz-
dc.contributor.authorSchuetz, Philipp-
dc.contributor.authorGasser, Philippe-
dc.date.accessioned2018-01-25T11:16:25Z-
dc.date.available2018-01-25T11:16:25Z-
dc.date.issued2013-06-
dc.identifier.issn2169-9313de_CH
dc.identifier.urihttps://digitalcollection.zhaw.ch/handle/11475/2202-
dc.description.abstractLocal porosity theory in combination with percolation theory was applied to shale microstructures that were reconstructed on the basis of focused ion beam nanotomography and scanning transmission electron microscopy. This allowed characterizing pore microstructures in Opalinus clay with length scales on the order of tens of microns. In a sample from the sandy facies (with low clay content), the fraction of “larger” pores ϕ(radii~ > 15 nm) = 0.076 is substantially higher than that in the shaley facies (with a higher clay content), where ϕ(radii~ > 15 nm) = 0.015. The resolved porosity possesses a certain degree of homogeneity, and the representative volume element (RVE) of porosity can be determined in terms of a given relative error on porosity. For example, if we accept a relative error of 10%, the RVE is on the scale of a few hundreds of microns. Both pore microstructures from sandy and shaley facies show anisotropic characteristics with respect to connectivity and percolation threshold. Using finite scaling, we found percolation thresholds with critical porosities ϕc,b = 0.04-0.12 parallel to bedding and ϕc,perp = 0.11-0.19 perpendicular to bedding. The resolved porosity of the sandy facies (low clay content) is close to the percolation threshold, whereas the porosity of the shaley facies (high clay content) is below the percolation threshold. The porosity in carbonate layers is around ϕ = 0.027, and the pore size is substantially larger when compared to the pores in the clay matrix. In the analyzed sample, pores in carbonate layers are poorly connected.de_CH
dc.language.isoende_CH
dc.publisherWileyde_CH
dc.relation.ispartofJournal of Geophysical Research: Solid Earthde_CH
dc.rightsLicence according to publishing contractde_CH
dc.subjectMapde_CH
dc.subject.ddc620.11: Werkstoffede_CH
dc.titlePore space relevant for gas permeability in Opalinus clay : statistical analysis of homogeneity, percolation, and representative volume elementde_CH
dc.typeBeitrag in wissenschaftlicher Zeitschriftde_CH
dcterms.typeTextde_CH
zhaw.departementSchool of Engineeringde_CH
zhaw.organisationalunitInstitute of Computational Physics (ICP)de_CH
dc.identifier.doi10.1002/jgrb.50228de_CH
zhaw.funding.euNode_CH
zhaw.issue6de_CH
zhaw.originated.zhawYesde_CH
zhaw.pages.end2812de_CH
zhaw.pages.start2799de_CH
zhaw.publication.statuspublishedVersionde_CH
zhaw.volume118de_CH
zhaw.publication.reviewPeer review (Publikation)de_CH
Appears in collections:Publikationen School of Engineering

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Keller, L. M., Holzer, L., Schuetz, P., & Gasser, P. (2013). Pore space relevant for gas permeability in Opalinus clay : statistical analysis of homogeneity, percolation, and representative volume element. Journal of Geophysical Research: Solid Earth, 118(6), 2799–2812. https://doi.org/10.1002/jgrb.50228
Keller, L.M. et al. (2013) ‘Pore space relevant for gas permeability in Opalinus clay : statistical analysis of homogeneity, percolation, and representative volume element’, Journal of Geophysical Research: Solid Earth, 118(6), pp. 2799–2812. Available at: https://doi.org/10.1002/jgrb.50228.
L. M. Keller, L. Holzer, P. Schuetz, and P. Gasser, “Pore space relevant for gas permeability in Opalinus clay : statistical analysis of homogeneity, percolation, and representative volume element,” Journal of Geophysical Research: Solid Earth, vol. 118, no. 6, pp. 2799–2812, Jun. 2013, doi: 10.1002/jgrb.50228.
KELLER, Lukas M., Lorenz HOLZER, Philipp SCHUETZ und Philippe GASSER, 2013. Pore space relevant for gas permeability in Opalinus clay : statistical analysis of homogeneity, percolation, and representative volume element. Journal of Geophysical Research: Solid Earth. Juni 2013. Bd. 118, Nr. 6, S. 2799–2812. DOI 10.1002/jgrb.50228
Keller, Lukas M., Lorenz Holzer, Philipp Schuetz, and Philippe Gasser. 2013. “Pore Space Relevant for Gas Permeability in Opalinus Clay : Statistical Analysis of Homogeneity, Percolation, and Representative Volume Element.” Journal of Geophysical Research: Solid Earth 118 (6): 2799–2812. https://doi.org/10.1002/jgrb.50228.
Keller, Lukas M., et al. “Pore Space Relevant for Gas Permeability in Opalinus Clay : Statistical Analysis of Homogeneity, Percolation, and Representative Volume Element.” Journal of Geophysical Research: Solid Earth, vol. 118, no. 6, June 2013, pp. 2799–812, https://doi.org/10.1002/jgrb.50228.


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