Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity

The article discusses the concepts of upscaling, the representative volume element (RVE) of the geological environment in relation to porosity from the point of view of the theory of structured continuum. The manifestation of the large-scale effect of porosity in terrigenous and carbonate reservoirs...

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Main Authors: Damir I. Khassanov, Marat A. Lonshakov
Format: Article
Language:English
Published: Georesursy Ltd. 2020-12-01
Series:Georesursy
Subjects:
Online Access:https://geors.ru/archive/article/1062/
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author Damir I. Khassanov
Marat A. Lonshakov
author_facet Damir I. Khassanov
Marat A. Lonshakov
author_sort Damir I. Khassanov
collection DOAJ
description The article discusses the concepts of upscaling, the representative volume element (RVE) of the geological environment in relation to porosity from the point of view of the theory of structured continuum. The manifestation of the large-scale effect of porosity in terrigenous and carbonate reservoirs has been studied. The analysis of domestic and foreign methods of core sampling was carried out using the example of the Schlumberger company to study the porosity and permeability of the core in petrophysical laboratories and calculate the RVE of rock samples according to the porosity values ​​determined by analyzing the pore-network model, liquid saturation, nuclear magnetic resonance and X-ray computed tomography, as well as the gas-volumetric method. The features and reasons for the manifestation of the large-scale effect of porosity in heterogeneous carbonate reservoirs have been studied. Methods for quantitative assessment of the anisotropy of rocks in the study of heterogeneity of rocks are considered. The necessity of taking into account the scale effect of porosity in the analysis of the correlation dependence “core - geophysical well logging”, established from the porosity data for both terrigenous and carbonate sections. The feasibility of using a core with a diameter of 60–100 mm and standard-size samples is considered when comparing laboratory values ​​of porosity and porosity values ​​determined from logging data. A study of direct and indirect petrophysical methods for determining the porosity of core samples was carried out when solving the same problems to identify the minimum representative volume of a core sample. It has been established that direct methods are the most effective in terms of time and financial costs for the prompt calculation of porosity coefficients for specimens with a diameter and height of 30–100 mm. The analysis of the porosity data ultimately made it possible to study the manifestation of the scale effect of porosity with a change in the sample size. A detailed analysis of published works will allow in the future to develop our own effective sampling technique for determining the RVE of the core interval as applied to porosity.
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spelling doaj.art-86ffb6b2dfd148b2b463fc38da3c37d22022-12-21T20:13:37ZengGeoresursy Ltd.Georesursy1608-50431608-50782020-12-01224556910.18599/grs.2020.4.55-69Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosityDamir I. Khassanov0Marat A. Lonshakov1Kazan Federal UniversityKazan Federal UniversityThe article discusses the concepts of upscaling, the representative volume element (RVE) of the geological environment in relation to porosity from the point of view of the theory of structured continuum. The manifestation of the large-scale effect of porosity in terrigenous and carbonate reservoirs has been studied. The analysis of domestic and foreign methods of core sampling was carried out using the example of the Schlumberger company to study the porosity and permeability of the core in petrophysical laboratories and calculate the RVE of rock samples according to the porosity values ​​determined by analyzing the pore-network model, liquid saturation, nuclear magnetic resonance and X-ray computed tomography, as well as the gas-volumetric method. The features and reasons for the manifestation of the large-scale effect of porosity in heterogeneous carbonate reservoirs have been studied. Methods for quantitative assessment of the anisotropy of rocks in the study of heterogeneity of rocks are considered. The necessity of taking into account the scale effect of porosity in the analysis of the correlation dependence “core - geophysical well logging”, established from the porosity data for both terrigenous and carbonate sections. The feasibility of using a core with a diameter of 60–100 mm and standard-size samples is considered when comparing laboratory values ​​of porosity and porosity values ​​determined from logging data. A study of direct and indirect petrophysical methods for determining the porosity of core samples was carried out when solving the same problems to identify the minimum representative volume of a core sample. It has been established that direct methods are the most effective in terms of time and financial costs for the prompt calculation of porosity coefficients for specimens with a diameter and height of 30–100 mm. The analysis of the porosity data ultimately made it possible to study the manifestation of the scale effect of porosity with a change in the sample size. A detailed analysis of published works will allow in the future to develop our own effective sampling technique for determining the RVE of the core interval as applied to porosity.https://geors.ru/archive/article/1062/representative volume elementrepresentative elementary volumecoreopen porosity coefficientscale effect of porosityliquid saturation methodupscalingdownscalingpore-network modelstandard core analysisx-ray computed tomography
spellingShingle Damir I. Khassanov
Marat A. Lonshakov
Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
Georesursy
representative volume element
representative elementary volume
core
open porosity coefficient
scale effect of porosity
liquid saturation method
upscaling
downscaling
pore-network model
standard core analysis
x-ray computed tomography
title Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
title_full Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
title_fullStr Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
title_full_unstemmed Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
title_short Investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
title_sort investigation of the scale effect and the concept of a representative volume element of rocks in relation to porosity
topic representative volume element
representative elementary volume
core
open porosity coefficient
scale effect of porosity
liquid saturation method
upscaling
downscaling
pore-network model
standard core analysis
x-ray computed tomography
url https://geors.ru/archive/article/1062/
work_keys_str_mv AT damirikhassanov investigationofthescaleeffectandtheconceptofarepresentativevolumeelementofrocksinrelationtoporosity
AT maratalonshakov investigationofthescaleeffectandtheconceptofarepresentativevolumeelementofrocksinrelationtoporosity