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◆ Langmuir : the ACS journal of surfaces and colloids2026-08-11

A Precise Pore-Structure Matching Method for Microfluidic Chips and Core Porous Media and Its Oil-Displacement Mechanisms.

Ruibo Cao, Lihui Wang, Xiaoqin Zhang, Wei Yan, Xidong Ren, Yanfu Pi, Tianhan Xu, Yuan Wang, Yanxi Ning

原始摘要(英文原文)· Original abstract
Microfluidic chips are widely used to investigate pore-scale oil-displacement mechanisms, but the quantitative matching between chip pore structures and real reservoir cores remains insufficient. In this study, a quantitative pore-structure matching workflow was developed by integrating image processing, vector conversion, a self-developed MATLAB-based two-dimensional (2D) image editor, pore-structure characterization, microfluidic visualization experiments, and numerical simulation. Key parameters, including porosity, permeability, pore-throat radius, pore-throat ratio, and coordination number, were used to evaluate the matching between microfluidic chips and reservoir cores. The results show that the proposed method enabled pixel-level editing and synchronous regulation of pore-throat structures. Three chip models, including homogeneous high-permeability, homogeneous low-permeability, and heterogeneous models, were constructed, with a controllable permeability range of 200-1000 mD. By combining image analysis, core fluorescence analysis, constant-rate mercury intrusion, and COMSOL simulation, the matching degree between the chip models and real core pore-structure parameters exceeded 90%, indicating that the chips effectively reproduced the main pore-throat characteristics of the target reservoir. Visualization oil-displacement experiments further demonstrated that 15-30 μm preformed particle gel (PPG) particles achieved effective pore-throat matching through selective plugging, flow diversion, and deep profile control. The adaptive plugging, profile-control, and displacement system significantly improved sweep efficiency in the heterogeneous model, with recovery factors of 95.03% and 85.7% in the high- and low-permeability layers, respectively, higher than those obtained by weak-alkali ASP flooding. Numerical simulations identified the optimal displacement parameters as a viscosity of 70 mPa·s and an interfacial tension of 0.03 mN/m. This study provides a quantitative method for designing representative microfluidic chips and offers experimental and numerical support for pore-scale EOR mechanism analysis.
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A Precise Pore-Structure Matching Method for Microfluidic Chips and Core Porous Media and Its Oil-Displacement Mechanisms. — 科研速览 Science Skim