Experimental Study on Deformation Behavior and Permeability Evolution of Sandstone Responding to Mining Stress
Abstract
:1. Introduction
2. Experimental Section
2.1. Sample Preparation
2.2. Experimental Apparatus
2.3. Experimental Procedure
- (1)
- Hydrostatic pressure stage: The sandstone specimens were firstly dried at 100 °C for 48 h. Then, the dried specimens were sealed with a thermal-shrinkable sleeve and placed into the triaxial cell. The specimens were hydrostatically loaded to the target confining pressure (15 MPa, 20 MPa, and 25 MPa) at the rate of 3 MPa/min. Nitrogen with a specified pressure (1 MPa, 1.5 MPa, and 2 MPa) was then injected into the upstream of the specimens.
- (2)
- Stage I: The axial stress was loaded to 1.5 times the initial confining pressure by the stress control mode with a loading rate of 0.625 MPa/min, while the confining stress was unloaded to 0.6 times the initial confining pressure with a loading rate of −0.5 MPa/min.
- (3)
- Stage II: In this study, the concentration coefficient of front abutment pressure was determined as 2.5, and the horizontal stress unloaded to 0.2 times the initial state. So, the axial stress was further loaded to 2.5 times the initial confining pressure by the stress control mode with a loading rate of 1.25 MPa/min, while the confining stress was unloaded to 0.2 times the initial confining pressure with a loading rate of −0.5 MPa/min.
- (4)
- Stage III: The confining pressure remained constant, which ensured that the pore pressure is not larger than the confining pressure and the permeability can continue to be measured while preventing equipment damage. In addition, the load mode of displacement control with a rate of 0.1 mm/min was selected to control the axial stress loading until the specimens were destroyed. Throughout the experiments, the gas flows were continuously recorded at the downstream cylinders for calculating the permeability.
3. Results and Discussion
3.1. Deformation Behavior of Sandstone under Mining Stress
3.2. Failure Mode of Sandstone under Mining Stress Conditions
3.3. Permeability Evolution of Sandstone under Mining Stress
3.4. Permeability Fitting Model of Sandstone under Mining Stress
4. Conclusions
- (1)
- In the imitated mining stress path, the variation tendency of the axial strain, the radial strain, and the volumetric strain for sandstone show a linear growth trend, an exponential function growth trend, and a transverse “V” symmetrical distribution, respectively. Under the same in situ stress, the mechanical deformation in sandstone is more sensitive to mining stress than to pore pressure.
- (2)
- Most sandstone samples maintain compression state at the peak stress condition due to the mineral composition and pore–fracture structure. The absolute value of both the axial strain and the radial strain at the peak stress state increases with the incremental confining pressure. Under the same in situ stress, the volumetric strain at the peak stress gradually decreases, which is caused by the increased pore pressure. The failure mode of sandstone evolved from shear failure to shear–tension failure with the increase in in situ stress, which corresponds to the transformation from a single shear fracture to form an approximate “X”-shaped conjugate shear fracture or to the main shear fracture followed by a secondary shear–tension fracture.
- (3)
- The sandstone permeability, under the same in situ stress and pore pressure, increases exponentially with the mining stress simulated by axial loading and radial unloading. The permeability under a mining stress state was well-characterized by the stress-relief effect.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Sample No. | Diameter (mm) | Length (mm) | Density (g/cm3) | Initial Confining Pressure (MPa) | Seepage Pressure (MPa) |
---|---|---|---|---|---|
B1 | 49.59 | 99.71 | 2.45 | 15 | 1 |
B2 | 49.41 | 99.72 | 2.47 | 15 | 1.5 |
B3 | 49.55 | 99.87 | 2.45 | 15 | 2 |
B4 | 49.99 | 100.07 | 2.44 | 20 | 1 |
B5 | 50.37 | 99.94 | 2.40 | 20 | 1.5 |
B6 | 49.70 | 99.82 | 2.44 | 20 | 2 |
B7 | 49.83 | 100.01 | 2.46 | 25 | 1 |
B8 | 50.01 | 100.04 | 2.44 | 25 | 1.5 |
B9 | 49.88 | 99.77 | 2.44 | 25 | 2 |
Sample No. | Peak Stress (MPa) | Corresponding Test Value of Peak Stress | Peak Permeability (×10−17 m2) | |||
---|---|---|---|---|---|---|
Axial Strain (%) | Radial Strain (%) | Volumetric Strain (%) | Permeability (×10−17 m2) | |||
B1 | 89.68 | 1.251 | −0.51 | 0.23 | 12.73 | 52.14 |
B2 | 98.71 | 1.558 | −0.698 | 0.161 | 13.60 | 90.77 |
B3 | 71.50 | 0.831 | −0.269 | 0.292 | 28.76 | 96.44 |
B4 | 113.80 | 1.695 | −0.678 | 0.339 | 5.58 | 61.65 |
B5 | 107.30 | 1.325 | −0.746 | −0.166 | 13.89 | 72.85 |
B6 | 87.43 | 1.065 | −0.455 | 0.154 | 17.44 | 88.23 |
B7 | 133.11 | 1.550 | −0.672 | 0.206 | 7.29 | 68.21 |
B8 | 113.80 | 1.287 | −0.678 | −0.069 | 8.64 | 89.22 |
B9 | 96.93 | 1.091 | −0.506 | 0.079 | 12.92 | 53.98 |
Sample No. | In Situ Stress (MPa) | Pore Pressure (MPa) | Parameters | R2 | |
---|---|---|---|---|---|
A | B | ||||
B1 | 15 | 1 | 5.63 × 10−3 | 0.506 | 0.988 |
B2 | 15 | 1.5 | 1.12 × 10−3 | 0.650 | 0.989 |
B3 | 15 | 2 | 1.80 × 10−6 | 1.311 | 0.997 |
B4 | 20 | 1 | 0.021 | 0.255 | 0.981 |
B5 | 20 | 1.5 | 0.012 | 0.343 | 0.991 |
B6 | 20 | 2 | 5.98 × 10−5 | 0.693 | 0.992 |
B7 | 25 | 1 | 7.28 × 10−3 | 0.250 | 0.996 |
B8 | 25 | 1.5 | 0.017 | 0.235 | 0.997 |
B9 | 25 | 2 | 8.23 × 10−3 | 0.253 | 0.996 |
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Liu, Y.; Zhang, T.; Wu, J.; Song, Z.; Wang, F. Experimental Study on Deformation Behavior and Permeability Evolution of Sandstone Responding to Mining Stress. Energies 2022, 15, 7030. https://doi.org/10.3390/en15197030
Liu Y, Zhang T, Wu J, Song Z, Wang F. Experimental Study on Deformation Behavior and Permeability Evolution of Sandstone Responding to Mining Stress. Energies. 2022; 15(19):7030. https://doi.org/10.3390/en15197030
Chicago/Turabian StyleLiu, Yang, Tong Zhang, Jun Wu, Zhengyang Song, and Fei Wang. 2022. "Experimental Study on Deformation Behavior and Permeability Evolution of Sandstone Responding to Mining Stress" Energies 15, no. 19: 7030. https://doi.org/10.3390/en15197030
APA StyleLiu, Y., Zhang, T., Wu, J., Song, Z., & Wang, F. (2022). Experimental Study on Deformation Behavior and Permeability Evolution of Sandstone Responding to Mining Stress. Energies, 15(19), 7030. https://doi.org/10.3390/en15197030