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◆ Journal of CO2 Utilization2026-07-31· Degree (music)

X‑ray computed tomography‑based experimental investigation of CO₂ miscible zone formation mechanisms and degree of miscibility

Yuhao Mei, Wenhan Lyu, Wenfeng Lv, Guo Wang, Ke Zhang, Xinyu Zhou, 陈尧泽

原始摘要(原文)
Carbon dioxide capture, utilization, and storage–enhanced oil recovery (CCUS–EOR) depends on the progressive development of CO₂–oil miscibility, yet the pressure-controlled transition from interfacial mass transfer to porous-media miscible-zone propagation remains difficult to quantify. In this study, X-ray computed tomography (CT) was combined with a time-series dual-energy CT material decomposition fusion algorithm (TDEMDF) to visualize CO₂–oil contact, quantify density redistribution, and reconstruct saturation during direct-contact and core-flooding experiments. The interfacial-tension-extrapolated minimum miscibility pressure (MMP) was 14.21 MPa; however, CT observations showed that MMP marks a mechanism transition rather than complete density equilibration. A miscible zone appeared at 9 MPa and evolved through three stages: CO₂ dissolution dominated at 9–14 MPa, oil-component extraction dominated from the MMP to the density-equilibrium threshold pressure (P DE ) of 18.62 MPa, and miscible-zone expansion dominated above P DE . Although complete CT-density parity between the CO₂-rich and oil-rich regions would require an extrapolated pressure of approximately 36.03 MPa, density-difference reduction became much less pressure-sensitive above 18.62 MPa. A density-difference-normalized apparent miscibility index coupled with Tsallis entropy revealed stepwise miscibility enhancement. Core-flooding results further showed that pore structure restricts CO₂–oil contact, lowering the peak Tsallis entropy from 2.92 in direct-contact experiments to 2.64 in porous media. Compared with the conventional method, TDEMDF reduced MAE from 16.41 to 6.23, improving saturation-estimation performance by 50.2%. These results demonstrate that CO₂–oil miscibility continues to evolve beyond the MMP and provide a CT-based framework for pressure optimization, miscible-zone monitoring, and saturation reconstruction in CCUS–EOR.
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X‑ray computed tomography‑based experimental investigation of CO₂ miscible zone formation mechanisms and degree of miscibility — 科研速览 Science Skim