CO2-Foam Monitoring using Resistivity and Pressure Measurements

Article ID

63URM

Alt text: Scientific image of CO2 foam used in pressure and resistivity measurements.

CO2-Foam Monitoring using Resistivity and Pressure Measurements

Metin Karakas
Metin Karakas University of Bergen, Norway
Fred Aminzadeh
Fred Aminzadeh
Arne Graue
Arne Graue
DOI

Abstract

This paper focuses on combining resistivity and pressure measurements to determine the effectiveness of foam as a mobility control method. It presents a theoretical framework to describe the expected resistivity changes during CO2-foam displacements. With this objective, we first provide equations to estimate the resistivity for CO2-foam systems and then utilize two distinct foam models to quantify these effects. Using analytical solutions based on the fractional flow theory, we present resistivity and mobility distributions for ideal and non-ideal reservoir displacement scenarios. Additionally, assuming pressure measurements only, we examine the inter-dependency between various foam parameters. Our results suggest that the combination of pressure and resistivity measurements in time-lapse mode could be deployed as an effective monitoring tool in field applications of the (CO2) foam processes. The proposed method is novel as it could be employed to predict under-performing CO2-foam floods and improve oil recovery and CO2 storage.

CO2-Foam Monitoring using Resistivity and Pressure Measurements

This paper focuses on combining resistivity and pressure measurements to determine the effectiveness of foam as a mobility control method. It presents a theoretical framework to describe the expected resistivity changes during CO2-foam displacements. With this objective, we first provide equations to estimate the resistivity for CO2-foam systems and then utilize two distinct foam models to quantify these effects. Using analytical solutions based on the fractional flow theory, we present resistivity and mobility distributions for ideal and non-ideal reservoir displacement scenarios. Additionally, assuming pressure measurements only, we examine the inter-dependency between various foam parameters. Our results suggest that the combination of pressure and resistivity measurements in time-lapse mode could be deployed as an effective monitoring tool in field applications of the (CO2) foam processes. The proposed method is novel as it could be employed to predict under-performing CO2-foam floods and improve oil recovery and CO2 storage.

Metin Karakas
Metin Karakas University of Bergen, Norway
Fred Aminzadeh
Fred Aminzadeh
Arne Graue
Arne Graue

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Metin Karakas. 2026. “. Global Journal of Research in Engineering – J: General Engineering GJRE-J Volume 22 (GJRE Volume 22 Issue J2): .

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Crossref Journal DOI 10.17406/gjre

Print ISSN 0975-5861

e-ISSN 2249-4596

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GJRE-J Classification: DDC Code: 620 LCC Code: TP1183.F6
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CO2-Foam Monitoring using Resistivity and Pressure Measurements

Metin Karakas
Metin Karakas University of Bergen, Norway
Fred Aminzadeh
Fred Aminzadeh
Arne Graue
Arne Graue

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