Test Study of Seepage Characteristics of Coal Rock under Various Thermal, Hydraulic, and Mechanical Conditions
Abstract
:1. Introduction
2. Experimental Procedure
2.1. Specimen Preparation and Porosity Testing
2.2. Testing Equipment and Principle
2.3. Test Plan and Steps
- (1)
- The surrounding of the coal rock specimen was wrapped with a heat-shrinkable tube, the specimen was placed in the test system, the water pipe, axial extensometer, axial circumferential extensometer and temperature sensor were install, and the triaxial cell was positioned, as shown in Figure 3.
- (2)
- A lower axial pressure of 3 kN was first preloaded in the axial direction, and then the confining pressure σ3 and the axial pressure σ1 were applied in turn at a loading rate of 2 MPa/min to obtain the experimental design value, and σ1 = σ3 was maintained. The hydraulic pressure was applied at a loading rate of 0.1 MPa/min to obtain the test design value P, ensuring that σ3 > P, maintaining the axial pressure, confining pressure, and water pressure. The water outlet time and water quality were recorded after the water flowed out of the lower outlet. The mass was weighed using a high-precision electronic balance, as shown in Figure 4. The electronic balance was connected to the computer to automatically record the data, and the program was run for 1.5 h after the water was stable.
- (3)
- The temperature was increased from room temperature of 25 °C to 85 °C at a heating rate of 0.5 °C/min, and each level was loaded at 20 °C. Data including axial displacement, circumferential displacement, and temperature were monitored during the test.
3. Test Results and Analysis
3.1. The Effect of Temperature on Volumetric Strain
3.2. Influence of Temperature on Water Output in the Seepage Process
3.3. The Effect of Temperature on the Permeability
3.4. Evolution Analysis of Coal Porosity
4. Conclusions
- (1)
- With the increase of temperature, the volumetric strain of the coal specimens increased gradually, and the expansion of volume was obvious. The higher the temperature, the greater was the increase of volumetric strain. The increase of the confining pressure had an inhibitory effect on the thermal expansion of the coal specimens. The thermal expansion of coal specimens under the action of high confining pressure was not obvious, and the volume strain increased slightly.
- (2)
- Temperature had an inhibitory effect on the seepage of coal specimens. The higher the temperature, the lower was the permeability. The increase in temperature caused the coal matrix to heat and expand, and the internal cracks and pores of the coal body were compressed and closed. The higher the temperature, the more pores and fractures were closed, and fewer seepage channels remained present, therefore the permeability was reduced. Confining pressure also had an inhibitory effect on seepage. Under the same temperature conditions, the greater the confining pressure, the lower was the permeability. The increase of the confining pressure caused the coal specimen volume to compress and become compact, so increasing the water pressure did not significantly increase the permeability of coal specimens.
- (3)
- Considering parameters such as volume strain, temperature, thermal expansion coefficient, and initial porosity, the relational expressions for porosity under each parameter were deduced. Moreover, the results of the seepage test were compared with the theoretically calculated values, and it was found that the theoretically calculated values were consistent with the experimental values. Except for when the confining pressure was 20 MPa, the porosity and permeability of coal specimens decreased with the increase in temperature.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Temperature /°C | 25 | 45 | 65 | 85 |
---|---|---|---|---|
Dynamic Viscosity/mPa·s | 0.8900 | 0.5958 | 0.4329 | 0.3345 |
Confining Pressure/MPa | Hydraulic Pressure/MPa | Temperature /°C | Permeability /10−18 m2 | Rate /% |
---|---|---|---|---|
5 | 4 | 25 | 15.08 | - |
45 | 6.49 | −56.9 | ||
65 | 3.64 | −43.9 | ||
85 | 2.94 | −19.2 | ||
10 | 8 | 25 | 1.89 | - |
45 | 1.48 | −21.7 | ||
65 | 1.32 | −10.8 | ||
85 | 1.18 | −10.6 | ||
15 | 12 | 25 | 1.59 | - |
45 | 1.19 | −25.1 | ||
65 | 1.02 | −14.2 | ||
85 | 0.91 | −10.7 | ||
20 | 16 | 25 | 0.12 | - |
45 | 0.18 | 50.0 | ||
65 | 0.20 | 11.1 | ||
85 | 0.22 | 10.0 |
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Zhao, Y.; Liu, Q.; Tang, L.; Liao, J.; Chang, L.; Wang, X.; Li, Y.; Ren, S. Test Study of Seepage Characteristics of Coal Rock under Various Thermal, Hydraulic, and Mechanical Conditions. Machines 2022, 10, 1012. https://doi.org/10.3390/machines10111012
Zhao Y, Liu Q, Tang L, Liao J, Chang L, Wang X, Li Y, Ren S. Test Study of Seepage Characteristics of Coal Rock under Various Thermal, Hydraulic, and Mechanical Conditions. Machines. 2022; 10(11):1012. https://doi.org/10.3390/machines10111012
Chicago/Turabian StyleZhao, Yanlin, Qiang Liu, Liming Tang, Jian Liao, Le Chang, Xiaguang Wang, Yang Li, and Sheng Ren. 2022. "Test Study of Seepage Characteristics of Coal Rock under Various Thermal, Hydraulic, and Mechanical Conditions" Machines 10, no. 11: 1012. https://doi.org/10.3390/machines10111012
APA StyleZhao, Y., Liu, Q., Tang, L., Liao, J., Chang, L., Wang, X., Li, Y., & Ren, S. (2022). Test Study of Seepage Characteristics of Coal Rock under Various Thermal, Hydraulic, and Mechanical Conditions. Machines, 10(11), 1012. https://doi.org/10.3390/machines10111012