Confinement Effect on Porosity and Permeability of Shales

Влияние геостатического сжатия на пористость и проницаемость сланцев
Jan Goral, Palash Panja, Milind Deo, Matthew Andrew, Sven Linden, Jens-Oliver Schwarz, Andreas Wiegmann
2020-01-08

FIB-SEM nano-tomographydigital rock 3D modelsporosity and permeabilityreservoir confinementshale reservoirs
Porosity and permeability are the key factors in assessing the hydrocarbon productivity of unconventional (shale) reservoirs, which are complex in nature due to their heterogeneous mineralogy and poorly connected nano- and micro-pore systems. Experimental efforts to measure these petrophysical properties posse many limitations, because they often take weeks to complete and are difficult to reproduce. Alternatively, numerical simulations can be conducted in digital rock 3D models reconstructed from image datasets acquired via e.g., nanoscale-resolution focused ion beam-scanning electron microscopy (FIB-SEM) nano-tomography. In this study, impact of reservoir confinement (stress) on porosity and permeability of shales was investigated using two digital rock 3D models, which represented nanoporous organic/mineral microstructure of the Marcellus Shale. Five stress scenarios were simulated for different depths (2,000-6,000 feet) within the production interval of a typical oil/gas reservoir within the Marcellus Shale play. Porosity and permeability of the pre- and post-compression digital rock 3D models were calculated and compared. A minimal effect of stress on porosity and permeability was observed in both 3D models. These results have direct implications in determining the oil-/gas-in-place and assessing the production potential of a shale reservoir under various stress conditions.
1
Compression produced minimal changes in porosity and permeability in both nanoporous digital rock models.
2
Digital simulations provide an alternative to experimental measurements that can require weeks and have reproducibility limitations.
3
Five confinement scenarios corresponding to depths of 2,000–6,000 feet were evaluated using two Marcellus Shale 3D models.
4
The results support assessing shale oil/gas in place and production potential across varying reservoir stress conditions.
5
The study uses FIB-SEM-derived digital rock models to simulate how reservoir stress affects shale porosity and permeability.

Marcellus Shale nanoporous organic/mineral microstructure represented by digital rock 3D models under reservoir confinement stress

The effect of reservoir confinement stress at different depths on shale porosity and permeability

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2020-01-08
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Authors
Jan Goral
Palash Panja
Milind Deo
Matthew Andrew
Sven Linden
Jens-Oliver Schwarz
Andreas Wiegmann
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