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3D imaging and flow characterization of the pore space of carbonate core samples

Date

2006

Authors

Knackstedt, Mark
Arns, Christoph
Ghous, Abid
Sakellariou, Arthur
Senden, Tim
Sheppard, Adrian
Sok, Rob
Averdunk, Holger
Pinczewski, W. Val
Padhy, Girija

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Publisher

Society of Core Analysts

Abstract

Carbonate rocks are inherently heterogeneous having been laid down in a range of depositional environments and having undergone significant diagenesis. They are particularly difficult to characterise as the pore sizes can vary over orders of magnitudes and connectivity of pores of different scales can impact greatly on flow properties. For example, separate vuggy porosity in an underlying matrix pore system can increase the porosity, but not the permeability and lead to large residual oil saturations due to trapping in vugs. A touching vug network can have a dramatic effect on permeability and lead to higher recoveries. In this paper we image a range of carbonate core material; from model carbonate cores to core material from outcrops and reservoirs via 3D via micro-CT. Image-based calculations of porosity, MICP and permeability on 3D images of the carbonate systems are directly compared to experimental data from the same or sister core material and give good agreement. The carbonate systems studied include samples with well connected macroporous systems and other where the macroporosity is poorly connected. Simulation of permeability on these systems and direct analysis of local flow properties within the system allows one to directly illustrate the important role of the connectivity of macropores on flow properties. Pore network models generated from the images illustrate the varied topology obtained in different carbonate samples and show a dramatic difference when compared to clastic samples. Many carbonate samples can include a significant proportion of microporosity (pores of 2 microns or less in extent) which are not directly accessible via current micro-CT capabilities. We discuss how one can map the structure and the topology of microporous regions crucial in studies of flow, production and recovery in carbonates. A hybrid numerical scheme is developed to measure the contribution of microporosity to the overall core permeability. Overall these results show the important role of identifying the connectivity of the pore sizes in dictating the single phase flow properties. Implications to two phase relative permeability and recovery are briefly discussed.

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Knackstedt, M., Arns, C., Ghous, A., Sakellariou, A., Senden, T., Sheppard, A. et al. (Sept 2006). 3D imaging and flow characterization of the pore space of carbonate core samples (SCA2006-23). Paper presented at the International Symposium of the Society of Core Analysts. Dublin, CA: Society of Core Analysts

Source

Symposium Trondheim 2006 Proceedings

Type

Conference paper

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