Physics mechanisms of fines detachment and migration during CO2-water corefloods

Fuente: arXiv
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Main Authors: Nguyen, C., Loi, G., Russell, T., Yang, Y., Zulkifli, N. N., Amir, M. I. Mahamad, Manap, A. A. Abdul, Shafian, S. R. Mohd, Badalyan, A., Bedrikovetsky, P., Zeinijahromi, A.
Format: Preprint
Published: 2024
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author Nguyen, C.
Loi, G.
Russell, T.
Yang, Y.
Zulkifli, N. N.
Amir, M. I. Mahamad
Manap, A. A. Abdul
Shafian, S. R. Mohd
Badalyan, A.
Bedrikovetsky, P.
Zeinijahromi, A.
author_facet Nguyen, C.
Loi, G.
Russell, T.
Yang, Y.
Zulkifli, N. N.
Amir, M. I. Mahamad
Manap, A. A. Abdul
Shafian, S. R. Mohd
Badalyan, A.
Bedrikovetsky, P.
Zeinijahromi, A.
contents One of the key risks for a Carbon Capture Storage (CCS) is injectivity decline. Evaporation of the connate brine in near-wellbore region during CO2 injection may result in drying-up the rock yielding the mobilisation and migration of clay particles leading to decline rock permeability and consequent loss of well injectivity. Influx of the reservoir brine into the dried-up zone yields accumulation of precipitated salt and injectivity decline. This paper presents the results of eight coreflooding experiments aiming investigation of the effect of rock dry-out, fines migration, and salt precipitation during CO2 injection. Pressure drops across the cores, brine saturation and produced clay fines concentration versus Pore Volume Injected (PVI) have been measured. All lab tests exhibit the following features: intensive fines production at the very beginning of gas-water production period following reduced-rate fines production during overall evaporation period and continuous fines disappearance at the late stage; abrupt increase in gas permeability in the middle of evaporation, and non-monotonic evaporation rate and pressure drop. To explain these phenomena, we distinguished three sequential regimes of fines detachment during two-phase displacement: (i) moving gas-water menisci; (ii) pendular rings of residual water; (iii) dry flux, and found that for the conditions of our corefloods, detachment is possible in regime (i) only. Fines production during overall evaporation period is explained by simultaneous occurrence of three regimes during unstable displacement of water by gas in micro-heterogeneous rock.
format Preprint
id arxiv_https___arxiv_org_abs_2403_14343
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Physics mechanisms of fines detachment and migration during CO2-water corefloods
Nguyen, C.
Loi, G.
Russell, T.
Yang, Y.
Zulkifli, N. N.
Amir, M. I. Mahamad
Manap, A. A. Abdul
Shafian, S. R. Mohd
Badalyan, A.
Bedrikovetsky, P.
Zeinijahromi, A.
Geophysics
One of the key risks for a Carbon Capture Storage (CCS) is injectivity decline. Evaporation of the connate brine in near-wellbore region during CO2 injection may result in drying-up the rock yielding the mobilisation and migration of clay particles leading to decline rock permeability and consequent loss of well injectivity. Influx of the reservoir brine into the dried-up zone yields accumulation of precipitated salt and injectivity decline. This paper presents the results of eight coreflooding experiments aiming investigation of the effect of rock dry-out, fines migration, and salt precipitation during CO2 injection. Pressure drops across the cores, brine saturation and produced clay fines concentration versus Pore Volume Injected (PVI) have been measured. All lab tests exhibit the following features: intensive fines production at the very beginning of gas-water production period following reduced-rate fines production during overall evaporation period and continuous fines disappearance at the late stage; abrupt increase in gas permeability in the middle of evaporation, and non-monotonic evaporation rate and pressure drop. To explain these phenomena, we distinguished three sequential regimes of fines detachment during two-phase displacement: (i) moving gas-water menisci; (ii) pendular rings of residual water; (iii) dry flux, and found that for the conditions of our corefloods, detachment is possible in regime (i) only. Fines production during overall evaporation period is explained by simultaneous occurrence of three regimes during unstable displacement of water by gas in micro-heterogeneous rock.
title Physics mechanisms of fines detachment and migration during CO2-water corefloods
topic Geophysics
url https://arxiv.org/abs/2403.14343