Pore-scale imaging and modelling

Визуализация и моделирование на масштабе пор
Stefan Iglauer, Martin J. Blunt, Christopher H. Pentland, Branko Bijeljic, Peyman Mostaghimi, Hu Dong, Oussama Gharbi, Adriana Paluszny
2012-04-04

capillary trappingdigital core analysismultiphase flowpore-scale imagingrelative permeability
Pore-scale imaging and modelling – digital core analysis – is becoming a routine service in the oil and gas industry, and has potential applications in contaminant transport and carbon dioxide storage. This paper briefly describes the underlying technology, namely imaging of the pore space of rocks from the nanometre scale upwards, coupled with a suite of different numerical techniques for simulating single and multiphase flow and transport through these images. Three example applications are then described, illustrating the range of scientific problems that can be tackled: dispersion in different rock samples that predicts the anomalous transport behaviour characteristic of highly heterogeneous carbonates; imaging of super-critical carbon dioxide in sandstone to demonstrate the possibility of capillary trapping in geological carbon storage; and the computation of relative permeability for mixed-wet carbonates and implications for oilfield waterflood recovery. The paper concludes by discussing limitations and challenges, including finding representative samples, imaging and simulating flow and transport in pore spaces over many orders of magnitude in size, the determination of wettability, and upscaling to the field scale. We conclude that pore-scale modelling is likely to become more widely applied in the oil industry including assessment of unconventional oil and gas resources. It has the potential to transform our understanding of multiphase flow processes, facilitating more efficient oil and gas recovery, effective contaminant removal and safe carbon dioxide storage.
1
Dispersion simulations across rock samples reproduce anomalous transport behavior characteristic of highly heterogeneous carbonates.
2
Imaging supercritical carbon dioxide in sandstone demonstrates the feasibility of capillary trapping for geological carbon storage.
3
Major challenges include representative sampling, multiscale imaging and simulation, wettability determination, and upscaling results to field scale.
4
Pore-scale imaging combined with numerical simulation is becoming a routine digital-core service in the oil and gas industry.
5
Relative-permeability calculations for mixed-wet carbonates provide insights into oilfield waterflood recovery.
6
The technology images rock pore spaces from nanometre scales upward and models single- and multiphase flow and transport through these structures.

Pore spaces of rocks and their digital representations, including sandstone and carbonate samples, for applications in subsurface flow and transport

Pore-scale single- and multiphase flow and transport behavior, including dispersion, capillary trapping, relative permeability, wettability, and upscaling limitations

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Publication Date
2012-04-04
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Authors
Stefan Iglauer
Martin J. Blunt
Christopher H. Pentland
Branko Bijeljic
Peyman Mostaghimi
Hu Dong
Oussama Gharbi
Adriana Paluszny
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