Mechanisms of Fines Migration and Pore-Structure Evolution Under Seepage Flow: Insights from LF-NMR and CFD–DEM
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Methods
2.2. CFD–DEM Simulation
2.2.1. Governing Equations for the Particle Phase
2.2.2. Governing Equations for the Fluid Phase
2.2.3. Particle–Fluid Interaction
2.2.4. DEM–CFD Coupling Model
2.2.5. Numerical Implementation Procedure
3. Results and Discussions
3.1. Sediment Morphology and Index Properties
3.2. Effects of Flow Velocity on Pore Structure and Particle Migration Characteristics
3.3. Numerical Results
3.3.1. Fine-Particle Migration and Clogging Processes
3.3.2. Influence of Flow Rate on Fine-Particle Migration
3.3.3. Effect of Fines Contents on Pore Structure
3.3.4. Pore Evolution and Influencing Factors
4. Conclusions and Limitations
- (1)
- The injection velocity significantly affects the migration of fine particles, but the marginal effect diminishes with increased flow rate. Higher injection speeds enhance hydrodynamic drag and shear force, promoting early migration and improving migration efficiency. However, as migration progresses, pore-structure limitations and particle retention gradually increase, leading to diminishing returns from further increases in injection speed in terms of migration efficiency and permeability enhancement.
- (2)
- The concentration of fine particles strongly influences the migration process. At a constant injection speed, an increase in fine-particle concentration delays the onset of migration due to enhanced particle interactions and clogging of pore throats. However, with continuous seepage, more fine particles are gradually mobilized and migrate out of the system, resulting in increased cumulative migration at higher concentrations.
- (3)
- The evolution of pore structure exhibits notable spatial heterogeneity. During fine-particle migration, pore changes predominantly occur near the entrance, then propagate downstream to the middle and exit areas under seepage-driven transport. Higher injection rates or fine-particle concentrations enlarge the spatial variability and amplitude of pore changes, reflecting the complex coupling between particle migration, pore-structure rearrangement, and pore clogging.
- (4)
- Both local particle retention and internal erosion occur simultaneously, influencing the overall seepage response. The spatial distribution of the porosity change rate indicates that fine particles temporarily bridge local pore throats, suggesting localized clogging. However, the overall evolution of migration rate and permeability shows that under continuous hydrodynamic action, fine particles are gradually displaced from the system, leading to increased pore connectivity and overall permeability enhancement.
- (5)
- Within the parameters and timescales considered in this study, particle migration is primarily driven by internal erosion and pore unclogging mechanisms. While local congestion may occur, it does not always evolve into large-scale clogging. Whether permeability decreases depends on the interaction between fine particle supply intensity, hydrodynamic conditions, and pore-structure adjustments.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| LF-NMR: | Low-Field Nuclear Magnetic Resonance |
| CFD-DEM | Computational Fluid Dynamics—Discrete Element Method |
| PFC | Particle Flow Code |
| SEM | Scanning Electron Microscope |
| MPa | Megapascal |
| DW | Deionized Water |
| FiPy | Finite Volume Method for Solving Partial Differential Equations (software) |
| PFC2D | Particle Flow Code—2D |
| PFC3D | Particle Flow Code—3D |
| EDEM | Engineering Discrete Element Modeling (software) |
| LIGGGHTS | Lattice–Boltzmann-Based Open-Source DEM Solver |
| T1 | Longitudinal Relaxation Time (also known as spin–lattice relaxation time) |
| T2 | Transverse Relaxation Time (also known as spin–spin relaxation time) |
| FC-40 | Fluorinated Liquid Used for Pressure Transmission (brand: 3M, USA) |
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| Type | Specific Implementation Software | Practical Application |
|---|---|---|
| One commercial code | PFC5.0, 6.0 STAR-CCM+ | [1,21,30,31] |
| Commercial CFD + Commercial DEM | COMSOL5.6 + PFC5.0 Ansys Fluent + EDEM | [32,33,34] |
| Commercial CFD + Open-source DEM | ANSYS Fluent15.0 + LIGGGHTS | [35] |
| Open source CFD + Commercial DEM | Openfoam + PFC5.0 Code Saturne + SIGRAME | [36,37,38] |
| Open source CFD + Open-source DEM | MFiX (an open-source simulation platform integrating CFD and DEM) Openfoam + LIGGGHTS | [8,9,39,40] |
| Programming language | C++ Fortran 90/95 | [41,42,43] |
| Properties | Specific Gravity (a) | Median Particle Size [µm] (b) | Density of Particle [g/cm3] (b) | Fluid Type | Fluid Density [g/cm3] |
|---|---|---|---|---|---|
| Montmorillonite (fine) | 2.53 | 10.72 | 2.53 | Deionized water (DW) | 1.0 |
| Quartz Sand (coarse) | 2.65 | 1770.00 | 2.65 |
| Computation Modules | Parameters | Montmorillonite | Coarse Grained [52] |
|---|---|---|---|
| DEM | Density [kg/m3] | 2.3 × 103 | 2.65 × 103 |
| Normal-to-shear stiffness ratio | 2.5 [53] | 1 | |
| Friction coefficient | 0.2 [54] | 0.7 | |
| Particle number (clump) | 5122 (307,320) | 221 (-) | |
| Hydrate [1] | |||
| Density [kg/m3] | 0.9 × 103 | ||
| Effective modulus [Pa] | 7 × 108 | ||
| Normal-to-shear stiffness ratio | 1.8 | ||
| Friction coefficient | 0.8 | ||
| Parallel-bond effective modulus [Pa] | 2 × 109 | ||
| Parallel-bond normal-to-shear stiffness ratio | 1.8 | ||
| Parallel-bond tensile strength [Pa] | 4.5 × 107 | ||
| Parallel-bond cohesion strength [Pa] | 1.4 × 107 | ||
| Internal friction angle [°] | 30 | ||
| Particle number (rblock) | 9 (133) | ||
| CFD | Fluid density [kg/m3] | 1000 | |
| Fluid dynamic viscosity [Pa⋅s] | 0.001 | ||
| Case | Fine Concentration [Weight %] | Inlet Flow Rate [m/s] |
|---|---|---|
| 1 | 0.02 | 0.05 |
| 2 | 0.02 | 0.5 |
| 3 | 0.02 | 1 |
| 4 | 0.2 | 0.5 |
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Li, X.; Cao, M.; Jung, J.; Cao, S.C. Mechanisms of Fines Migration and Pore-Structure Evolution Under Seepage Flow: Insights from LF-NMR and CFD–DEM. Processes 2026, 14, 615. https://doi.org/10.3390/pr14040615
Li X, Cao M, Jung J, Cao SC. Mechanisms of Fines Migration and Pore-Structure Evolution Under Seepage Flow: Insights from LF-NMR and CFD–DEM. Processes. 2026; 14(4):615. https://doi.org/10.3390/pr14040615
Chicago/Turabian StyleLi, Xiaoshuang, Mengzhen Cao, Jongwon Jung, and Shuang Cindy Cao. 2026. "Mechanisms of Fines Migration and Pore-Structure Evolution Under Seepage Flow: Insights from LF-NMR and CFD–DEM" Processes 14, no. 4: 615. https://doi.org/10.3390/pr14040615
APA StyleLi, X., Cao, M., Jung, J., & Cao, S. C. (2026). Mechanisms of Fines Migration and Pore-Structure Evolution Under Seepage Flow: Insights from LF-NMR and CFD–DEM. Processes, 14(4), 615. https://doi.org/10.3390/pr14040615

