Experimental and Numerical Investigation on Oil Displacement Mechanism of Weak Gel in Waterflood Reservoirs
Abstract
:1. Introduction
2. Experiment
2.1. Experimental Equipment and Materials
2.2. Experimental Procedure
- Preparing the weak gel system required by the experiment: 0.4 g polymer was added into 200 mL produced formation water and stirred for 1 h. Then 0.9 g crosslinking agent and 0.2 g stabilizer were added to the solution and stirred for 1 h.
- Filtering the crude oil to avoid blocking the model.
- Saturating oil after the model is vacuumed.
- Water flooding (constant speed 0.03 mL/h), observe the microscopic seepage process in the process of water flooding, and film the distribution and morphology of residual oil in the micro model until no oil is produced by water flooding.
- Injecting 0.3 PV weak gel system into the lithography model while recording the microscopic oil displacement process by micro-camera.
- Placing the lithographic model in a 45 °C incubator for 2 h, and wait for the weak gel system to gel.
- The photolithography model was displaced by subsequent water until no oil was produced in the model. The microscopic oil flooding process was recorded by micro-camera.
- Image analysis.
- Cleaning the visualized model and preparing for the next experiment.
3. Analysis of Experimental Results
3.1. Phenomenon Description
3.1.1. Oil Displacement Dynamics and Residual Oil Types in Water Flooding Stage
3.1.2. Oil Displacement Dynamics and Residual Oil Characteristics in Weak Gel Injection Stage
3.1.3. Oil Displacement Dynamics and Residual Oil Characteristics in Subsequent Water Flooding Stage
3.1.4. Description of Local Oil Displacement
3.2. The Porous Flow Mechanism
- Preferential plugging of large channels
- 2.
- The integral and staged transport of weak gel
- 3.
- The residual oil flow along pore walls in weak gel displacement
3.3. The Profile-Control Mechanism
- The weak gel selectively enters the large pore channels
- 2.
- The gelation blocks the large pore channels and diverts the subsequent water flow direction
- 3.
- The viscoelastic gelation moves integrally to absorb oil by negative pressure
- 4.
- Oil droplets converge to form oil stream
4. Numerical Simulation
4.1. Simulation Model Parameters
4.2. Equations Influencing Weak Gel Displacement Dynamics
4.3. Dynamics of Weak Gel Injection
4.4. Diversion of Subsequent Water Flooding
5. Conclusions
- By analyzing the distribution patterns of residual oil in pores and throat through visualized microscopic oil displacement experiments at different stages, the residual oil of initial water flooding mainly exists in the form of cluster, column, dead end, and membranous, and it mainly exists in the form of cluster and dead end in subsequent water flooding stage following weak gel injection.
- The porous flow mechanism of weak gel includes the preferential plugging of large channels, the integral and staged transport of weak gel, and the residual oil flow along pore walls in weak gel displacement.
- The profile-control mechanism of weak gel is as follows: weak gel selectively enters the large channels, weak gel blocks large channels and forces subsequent water flow to change direction, weak gel uses viscoelastic bulk motion to form negative pressure oil absorption, and the oil droplets converge to form an oil stream, respectively.
- Numerical simulation coupling equations characterizing weak gel viscosity induced dynamics indicate that weak gel can effectively reduce the water-oil mobility ratio, preferentially block the high permeability layer and the large pore channels, divert the subsequent water to flood the low permeability layer, and improve the water injection swept efficiency. A weak gel system is able to flow forward under high-pressure difference, which can further improve oil displacement efficiency besides flow diversion.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Reservoir Parameters | Parameter Value |
---|---|
Reservoir top depth (m) | 1400 |
Permeability (mD) | 50, 55, 60, 80, 380, 400, 390, 180, 100, 50 |
Porosity (%) | 0.23 |
Original formation pressure (MPa) | 16 |
Reservoir Parameters | Parameter Value |
---|---|
Underground oil viscosity (mPa·s) | 8 |
Surface crude oil density (kg/m3) | 860 |
Water viscosity (mPa·s) | 0.5 |
Oil volume coefficient (m3/m3) | 1.09 |
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Cheng, H.; Zheng, X.; Wu, Y.; Zhang, J.; Zhao, X.; Li, C. Experimental and Numerical Investigation on Oil Displacement Mechanism of Weak Gel in Waterflood Reservoirs. Gels 2022, 8, 309. https://doi.org/10.3390/gels8050309
Cheng H, Zheng X, Wu Y, Zhang J, Zhao X, Li C. Experimental and Numerical Investigation on Oil Displacement Mechanism of Weak Gel in Waterflood Reservoirs. Gels. 2022; 8(5):309. https://doi.org/10.3390/gels8050309
Chicago/Turabian StyleCheng, Hongjie, Xianbao Zheng, Yongbin Wu, Jipeng Zhang, Xin Zhao, and Chenglong Li. 2022. "Experimental and Numerical Investigation on Oil Displacement Mechanism of Weak Gel in Waterflood Reservoirs" Gels 8, no. 5: 309. https://doi.org/10.3390/gels8050309
APA StyleCheng, H., Zheng, X., Wu, Y., Zhang, J., Zhao, X., & Li, C. (2022). Experimental and Numerical Investigation on Oil Displacement Mechanism of Weak Gel in Waterflood Reservoirs. Gels, 8(5), 309. https://doi.org/10.3390/gels8050309