Microstructural characteristics of the Whitby Mudstone Formation (UK)

M.E. Houben, A. Barnhoorn, Joella Lie-A-Fat, Thomas Ravestein, C.J. Peach, M.R. Drury

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

When trying to improve gas productivity from unconventional sources a first aim is to understand gas storage and gas flow potential through the rock by investigating the microstructure, mineralogy and matrix porosity of unfractured shale. The porosity and mineralogy of the Mulgrave Shale member of the Whitby Mudstone Formation (UK) were characterized using a combination of microscopy, X-ray diffraction and gas adsorption methods on samples collected from outcrops. The Whitby Mudstone is an analogue for the Dutch Posidonia Shale which is a possible unconventional source for gas. The Mulgrave shale member of the Whitby Mudstone Formation can microstructurally be subdivided into a fossil rich (>15%) upper half and a sub-mm mineralogically laminated lower half. All clasts are embedded within a fine-grained matrix (all grains < 2 μm) implying that any possible flow of gas will depend on the porosity and the pore network present within this matrix. The visible SEM porosity (pore diameter > 100 nm) is in the order of 0.5–2.5% and shows a non-connected pore network in 2D. Gas adsorption (N2, Ar, He) porosity (pore diameters down to 2 nm) has been measured to be 0.3–7%. Overall more than 40% of the visible porosity is present within the matrix. Comparing the Whitby Mudstone Formation to other (producing) gas shales shows that the rock plots in the low porosity and high clay mineral content range, which could imply that Whitby Mudstone shales could be less favourable to mechanical fracturing than other gas shales. Estimated permeability indicates values in the micro-to nano-darcy range.
Original languageEnglish
Pages (from-to)185-200
JournalMarine and Petroleum Geology
Volume70
Early online date28 Nov 2015
DOIs
Publication statusPublished - Feb 2016

Keywords

  • Gas shale
  • Whitby mudstone
  • Posidonia shale
  • on-milling
  • Scanning electron microscopy
  • Gas adsorption

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