Optimization and Application of Water Injection Process in Gas-Bearing Coal Seam
Abstract
:1. Introduction
Water Injection Technology
2. The “ Stress–Seepage ” Coupling Characteristics of Coal around Boreholes
2.1. Stress Distribution Characteristics of Coal around Boreholes
2.1.1. Stress Distribution Characteristics of Coal around the Borehole Prior to Water Injection
2.1.2. Stress Distribution Characteristics of the Coal around the Borehole after Water Injection
2.2. Seepage Characteristics of Coal around Boreholes
3. Optimization of the Water Injection Process in a Gas-Bearing Coal Seam
3.1. Sealing Process Optimization
3.2. Coal Seam Water Injection Process Optimization
3.2.1. Adding a Surfactant
3.2.2. Water Injection Pressure Optimization
3.2.3. Optimization of the Water Injection Equipment
4. Field Test and Implementation Effect
4.1. Field Test Schematic Design
Water Injection Test Steps
- (1)
- Before the start of water injection, thickener is added to the matching water tank to improve the viscosity of the fluid. According to the ratio, clean water is injected into the matching water tank and stirred evenly to complete the preparation of the thickener. Then, the water injection pump is started, and the flow regulation valve is used to continuously increase the water injection flow rate, so as to open multiple water injection main cracks and promote the expansion of secondary cracks.
- (2)
- When the water injection flow is increasing and the water injection pressure begins to decrease, it indicates that the water injection initiation process is completed. The fluid is replaced with a prepared surfactant, and the water injection flow is continuously increased through the water injection pump to reduce the fluid viscosity, increase the fluidity, and expand the influence range of the water injection.
- (3)
- When the water injection flow rate increases continuously and the water injection pressure increases again, it indicates that the water is wetted by seepage under the dual action of capillary force and surface tension. The fluid is replaced with a prepared high-concentration surfactant, and the water injection flow is continuously increased through the water injection pump to continuously reduce the surface tension between the liquid–solid two-phase contact surface and promote the further migration of water.
4.2. Water Injection Efficiency Analysis
4.2.1. Investigation of the Sealing Effect Prior to Water Injection
4.2.2. Investigation of the Water Injection Effect on the On-Site Coal Seam
5. Conclusions and Prospects
5.1. Conclusions
5.2. Prospects
- (1)
- As the coal seam is a typical grey system, it is impossible to directly obtain the actual change in stress in the process of water injection. With laboratory experiments and field tests, it is also difficult to completely reproduce the evolution characteristics of stress in the process of water injection that occur under the real mechanical environment. In this paper, the change in the coal stress field around the water injection borehole was obtained by numerical simulation. In the future, the real-time monitoring function of coal stress and strain in the seepage process can be realized by further improving the experimental system and using experimental research methods.
- (2)
- In the process of carrying out the engineering practice of step-by-step control technology for coal seam water injection, although the parameters, such as water injection pressure-flow rate, in this paper realized the real-time monitoring of the whole process of water injection, the control of key parameters and the core control equipment still need further study, and on this basis, the automatic and accurate solution of a mathematical analytical model was realized, and the automatic and intelligent coal seam water injection was completed, so as to further improve the effect of coal seam water injection disaster reduction.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Coal-and- Rock Strata | Density | Bulk Modulus [GPa] | Shear Modulus [GPa] | Tensile Strength [MPa] | Cohesion [MPa] | Internal Friction Angle [°] |
---|---|---|---|---|---|---|
Coal seam roof | 1300 | 15.6 | 10.8 | 1.74 | 9.95 | 25 |
Coal seam | 1300 | 0.65 | 0.3 | 0.7 | 0.5 | 18 |
Coal seam floor | 1450 | 22.6 | 11.1 | 1.58 | 6.72 | 42 |
Test Number | Water Injection Pressure [MPa] | Duration of Water Injection | Duration of Water Injection | Duration of Water Injection |
---|---|---|---|---|
1 | 6 | 500 | 1000 | 2000 |
2 | 8 | 500 | 1000 | 2000 |
3 | 10 | 500 | 1000 | 2000 |
4 | 12 | 500 | 1000 | 2000 |
Hole Number | C1-1 | C1-2 | C1-3 | C1-4 | C1-5 | C2-1 | C2-2 | C2-3 | C2-4 | C2-5 |
---|---|---|---|---|---|---|---|---|---|---|
Dip angle of hole [°] | 77.0 | 74.9 | 80.0 | 77.0 | 77.0 | 77.0 | 74.9 | 80.0 | 77.0 | 77.0 |
Depth of drilling coal [m] | 71.4 | 74.3 | 68.1 | 71.4 | 71.4 | 71.4 | 74.3 | 68.1 | 71.4 | 71.4 |
Drilling depth through coal [m] | 4.9 | 5.2 | 4.6 | 4.9 | 4.9 | 4.9 | 5.2 | 4.6 | 4.9 | 4.9 |
Group Number | Water Injection Pressure [MPa] | Flow Rate [m3/h] | Water Injection Volume [m3] | Average Influence Radius [m] | Water Content of the Coal around the Borehole before Water Injection [%] | Water Content of the Coal around the Borehole after Water Injection [%] |
---|---|---|---|---|---|---|
C1-1 | 0–10 | 2.00 | 2.67 | 3.00 | 1.31 | 3.73 |
C2-1 | 0–10 | 2.00–4.00 | 5.60 | 3.60 | 1.35 | 4.42 |
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Lin, X.; Liu, Z.; Geng, N.; Hu, P.; Gu, Q. Optimization and Application of Water Injection Process in Gas-Bearing Coal Seam. Processes 2023, 11, 3003. https://doi.org/10.3390/pr11103003
Lin X, Liu Z, Geng N, Hu P, Gu Q. Optimization and Application of Water Injection Process in Gas-Bearing Coal Seam. Processes. 2023; 11(10):3003. https://doi.org/10.3390/pr11103003
Chicago/Turabian StyleLin, Xiaolu, Zhen Liu, Ning Geng, Peng Hu, and Qingbo Gu. 2023. "Optimization and Application of Water Injection Process in Gas-Bearing Coal Seam" Processes 11, no. 10: 3003. https://doi.org/10.3390/pr11103003
APA StyleLin, X., Liu, Z., Geng, N., Hu, P., & Gu, Q. (2023). Optimization and Application of Water Injection Process in Gas-Bearing Coal Seam. Processes, 11(10), 3003. https://doi.org/10.3390/pr11103003