Experimental Study on the Effect of Unloading Paths on Coal Damage and Permeability Evolution
Abstract
:1. Introduction
2. Materials and Equipment
2.1. Coal Sample Preparation and Experimental System
2.2. Experimental Scheme
3. Results and Analysis
3.1. Coal Strength and Deformation Characteristics of Different Unloading Paths
3.2. Coal Damage Characteristics in Different Unloading Paths
3.3. Effect of Different Unloading Behaviors on Coal Permeability Evolution
3.4. Macroscopic Damage Characteristics of Coal Mass under Different Unloading Behaviors
3.5. Discussion
4. Conclusions
- (1)
- When the initial confining pressure was 5 MPa, 10 MPa, and 15 MPa, the peak differential stress of the coal samples in the constant confining pressure test was 21.99 MPa, 32.33 MPa, and 50.23 MPa, respectively. The peak differential stress of the coal samples in the unloading confining pressure (25 N/s) test was 41.4%, 29.0%, and 34.3% of that in the constant confining pressure and loading axial pressure path, respectively, indicating that the unloading confining pressure significantly reduced the strength of the coal mass. The peak differential stress of the coal samples in the 50 N/s unloading confining pressure test was 77.7%, 77.6%, and 62.2% of that in the 25 N/s unloading confining pressure test, respectively, indicating that the higher the unloading rate, the smaller the peak strength when the coal mass is damaged, that is, the high unloading rate is more likely to cause the destruction of the coal mass. The essence is that the unloading confining pressure reduces the cohesion and internal friction angle of the coal mass.
- (2)
- The results of acoustic emission monitoring show that the statistics of AE cumulative counts and AE cumulative energy show that the greater the unloading rate of confining pressure, the smaller the energy required for coal sample destruction, and the process of mechanical destruction of coal mass is the result of continuous accumulation of internal damage. This reflects that the unloading environment can significantly reduce the strength of coal mass, and the greater the unloading rate, the more obvious the strength reduction.
- (3)
- Permeability experiments show that at the initial confining pressures of 5 MPa, 10 MPa, and 15 MPa, the permeability of coal samples under constant confining pressure tests increased by 119.1 times, 75.2 times, and 86.8 times, respectively, before and after damage. For the unloading confining pressure (25 N/s) experiments, the permeability of the coal samples increased by 308.4 times, 272.6 times, and 183 times, respectively, before and after damage. This indicates that the unloading path results in a more significant increase in permeability after coal damage. For the unloading confining pressure experiments at 50 N/s, the permeability of the coal samples increased by 340.6 times, 314.9 times, and 342.9 times, respectively, before and after damage. This shows that the higher the unloading rate, the more significant the increase in permeability after coal damage. Essentially, the unloading damage to the coal reduces the paths for adsorbed gas to diffuse into the fractures, thereby increasing the channels for gas flow.
- (4)
- The results show that the coal mass is more easily damaged and has a better permeability increase under high-speed pressure relief. In engineering practice, mechanical cavitation technology or hydraulic cavitation with one reaming method should be preferred, as it will obtain better gas extraction efficiency under the same cavitation chamber and lower the risk of coal after pressure relief.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Test Classification | Coal Samples S.N. | Height/mm | Diameter/mm | Confining Pressure/MPa | Axial Pressure/KN | Loading Method |
---|---|---|---|---|---|---|
I | 1-1 | 100.0 | 48.5 | 5 | Load to damage | Constant confining pressure and axial pressure loading |
1-2 | 100.08 | 48.5 | 10 | |||
1-3 | 100.1 | 48.5 | 15 | |||
II | 2-1 | 100.1 | 48.6 | 5 | Load to , then Unload confining pressure and load to damage | Confining pressure unloading at 25 N/s, Axial pressure loading at 50 N/s |
2-2 | 100.05 | 48.5 | 10 | |||
2-3 | 100.1 | 48.6 | 15 | |||
III | 3-1 | 100.1 | 48.5 | 5 | Load to , then Unload confining pressure and load to damage | Confining pressure unloading at 50 N/s, Axial pressure loading at 100 N/s |
3-2 | 100.1 | 48.5 | 10 | |||
3-3 | 100.08 | 48.6 | 15 |
Stress Path | Intercept | Slope | Cohesion/MPa | Internal Friction Angle/° | R2 |
---|---|---|---|---|---|
Constant confining pressure and axial pressure loading | 6.240 | 3.824 | 1.595 | 35.83 | 0.978 |
Confining pressure unloading at 25 N/s and axial pressure loading | 4.430 | 2.841 | 1.314 | 28.64 | 0.999 |
Confining pressure unloading at 50 N/s and axial pressure loading | 3.803 | 2.192 | 1.284 | 21.93 | 0.986 |
Test Classification | Sample Serial Number | Confining Pressure/MPa | Initial Value/mD | Damage Value/mD | Sudden Increase by Times |
---|---|---|---|---|---|
I | 1-1 | 5 | 0.064 | 7.625 | 119.1 |
1-2 | 10 | 0.022 | 1.655 | 75.2 | |
1-3 | 15 | 0.0082 | 0.712 | 86.8 | |
II | 2-1 | 5 | 0.042 | 12.953 | 308.4 |
2-2 | 10 | 0.028 | 7.632 | 272.6 | |
2-3 | 15 | 0.0063 | 1.153 | 183 | |
III | 3-1 | 5 | 0.046 | 15.668 | 340.6 |
3-2 | 10 | 0.036 | 11.336 | 314.9 | |
3-3 | 15 | 0.00506 | 1.735 | 342.9 |
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Hao, C.; Wang, Y.; Liu, G. Experimental Study on the Effect of Unloading Paths on Coal Damage and Permeability Evolution. Processes 2024, 12, 1661. https://doi.org/10.3390/pr12081661
Hao C, Wang Y, Liu G. Experimental Study on the Effect of Unloading Paths on Coal Damage and Permeability Evolution. Processes. 2024; 12(8):1661. https://doi.org/10.3390/pr12081661
Chicago/Turabian StyleHao, Congmeng, Youpai Wang, and Guangyi Liu. 2024. "Experimental Study on the Effect of Unloading Paths on Coal Damage and Permeability Evolution" Processes 12, no. 8: 1661. https://doi.org/10.3390/pr12081661
APA StyleHao, C., Wang, Y., & Liu, G. (2024). Experimental Study on the Effect of Unloading Paths on Coal Damage and Permeability Evolution. Processes, 12(8), 1661. https://doi.org/10.3390/pr12081661