Dynamic Occurrence and Mobilization Mechanisms of Condensate in Porous Media Revealed by Micro-CT and Two-Dimensional NMR

Abstract During the depletion of gas-condensate reservoirs, the occurrence and mobilization of condensate in porous media are far more complex than those indicated by bulk PVT experiments because of the complexity of micro- to submicron-scale pore environments, where interfacial tension, capillary forces, and adsorption jointly govern fluid behavior. Conventional single-scale experimental approaches are insufficient to reveal the underlying microscopic mechanisms. In this study, a multiscale integrated characterization framework based on micro-CT and two-dimensional nuclear magnetic resonance (2D NMR) was established. Representative high-permeability and low-permeability core samples were selected for in situ three-dimensional visualization by micro-CT and for real-time monitoring of the entire depletion process by online 2D NMR. The results show that the first detectable liquid response appears in smaller pore-size intervals and subsequently redistributes as pressure declines. In the high-permeability core observed by Micro-CT, condensate saturation increased mainly in the 40–100 and 100–350 μm intervals. In the low-permeability core monitored by NMR, the 10–40 μm response increased to an intermediate-pressure maximum and then declined. These trends are consistent with the combined effects of heterogeneous nucleation, capillary retention, pressure-driven redistribution, revaporization, and possible ripening. Because the two cores were characterized by different techniques, their curves are used to compare overall evolution trends rather than as a strict quantitative measure of permeability effects. Compared with the bulk PVT reference, the apparent porous-medium dew-point pressures and liquid dropout responses differed. These differences do not demonstrate a shift of the equilibrium phase envelope. Instead, they reflect the coupled influence of nucleation kinetics, capillarity, pore connectivity, gas–liquid flow, and the detection limits of micro-CT and NMR. The results provide a controlled core-scale description of condensate occurrence and redistribution during stepwise depletion.

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Publication Details

Journal
ACS Omega
Published
2026-09-18
DOI
https://doi.org/10.1021/acsomega.6c05918
Primary Topic
Enhanced Oil Recovery Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic Occurrence and Mobilization Mechanisms of Condensate in Porous Media Revealed by Micro-CT and Two-Dimensional NMR

Xuehao Pei, Shuoshi Wang, Gengping Yan, Ningtao Zhang et al.
ACS Omega
Enhanced Oil Recovery Techniques
article

Dynamic Occurrence and Mobilization Mechanisms of Condensate in Porous Media Revealed by Micro-CT and Two-Dimensional NMR

Xuehao Pei, Shuoshi Wang, Gengping Yan, Ningtao Zhang, Chen Zhang, Furong Wang, Li Dai, Rujun Wang, Xingnan Ren, Zeyu Zhu
article en

Abstract

Abstract During the depletion of gas-condensate reservoirs, the occurrence and mobilization of condensate in porous media are far more complex than those indicated by bulk PVT experiments because of the complexity of micro- to submicron-scale pore environments, where interfacial tension, capillary forces, and adsorption jointly govern fluid behavior. Conventional single-scale experimental approaches are insufficient to reveal the underlying microscopic mechanisms. In this study, a multiscale integrated characterization framework based on micro-CT and two-dimensional nuclear magnetic resonance (2D NMR) was established. Representative high-permeability and low-permeability core samples were selected for in situ three-dimensional visualization by micro-CT and for real-time monitoring of the entire depletion process by online 2D NMR. The results show that the first detectable liquid response appears in smaller pore-size intervals and subsequently redistributes as pressure declines. In the high-permeability core observed by Micro-CT, condensate saturation increased mainly in the 40–100 and 100–350 μm intervals. In the low-permeability core monitored by NMR, the 10–40 μm response increased to an intermediate-pressure maximum and then declined. These trends are consistent with the combined effects of heterogeneous nucleation, capillary retention, pressure-driven redistribution, revaporization, and possible ripening. Because the two cores were characterized by different techniques, their curves are used to compare overall evolution trends rather than as a strict quantitative measure of permeability effects. Compared with the bulk PVT reference, the apparent porous-medium dew-point pressures and liquid dropout responses differed. These differences do not demonstrate a shift of the equilibrium phase envelope. Instead, they reflect the coupled influence of nucleation kinetics, capillarity, pore connectivity, gas–liquid flow, and the detection limits of micro-CT and NMR. The results provide a controlled core-scale description of condensate occurrence and redistribution during stepwise depletion.

ACS Omega
Southwest Petroleum University (CN), State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation (CN), Xinjiang Uygur Autonomous Region Education Department (CN), China National Petroleum Corporation (China) (CN)
China National Petroleum Corporation, National Science and Technology Major Project
Sustainable cities and communities
Openalex Percentile: Top 15%
Enhanced Oil Recovery Techniques
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