Surrounding Rock Control Technology of Thick Hard Roof and Hard Coal Seam Roadway under Tectonic Stress
Abstract
:1. Introduction
2. Experimental Methods and Materials
2.1. Geological Conditions and Ground Stress Measurement
2.1.1. Geological Condition
2.1.2. In Situ Stress Measuring Point Arrangement
2.2. Mechanics and Acoustic Emission Experiments
3. Results and Discussion
3.1. In Situ Stress Distribution Characteristics
3.2. Analysis of Stress–Strain Relationship and Deformation Failure Characteristics of Coal Block
3.3. Analysis of Acoustic Emission Characteristics
3.4. Numerical Model Calculation and Analysis
3.5. Control Technology of Roadway-Surrounding Rock
3.5.1. Project Profile
3.5.2. Control Technique
4. Conclusions
- (1)
- The stress field type of the Yushuling Coal Mine is the type, which involves mainly horizontal stress ( > > ). The maximum horizontal principal stress is 1.38~1.80 times that of the vertical principal stress, and the maximum horizontal principal stress is 1.94~2.76 times that of the minimum horizontal principal stress.
- (2)
- The brittleness index of No. 5 is 0.62; the failure energy release of the surrounding rock compressive energy floor rock sample is up to 150,000 mv * ms.
- (3)
- The greater the cumulative number of acoustic emission ringing, the greater the strength of the rock sample, the more severe the damage.
- (4)
- Under the influence of tectonic stress, the deformation of the surrounding rock of the left side of the roadway is the largest, and the deformation of the left side is greater than that of the right side. The range of plastic zone near the roof and floor of roadway increases with the increase of tectonic stress, and the maximum range of the plastic zone is 10.09 m, which is mainly developed along the direction of coal seam.
- (5)
- The surrounding rock control technology of an ‘asymmetric anchor net cable + pressure relief hole’ roadway can play an important control role in the deformation of surrounding rock of thick hard roof and hard coal seam roadways under the action of tectonic stress.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Name | (MPa) | (MPa) | (MPa) | ||
---|---|---|---|---|---|
YSL-1 | 8.78 | 5.75 | 3.20 | 1.53 | 2.74 |
YSL-2 | 8.60 | 4.77 | 3.11 | 1.80 | 2.76 |
YSL-3 | 6.34 | 4.61 | 3.26 | 1.38 | 1.94 |
Name of Rock Sample | Volumetric Weight | Tensile Strength | Compressive Strength | Angle of Internal Friction | Cohesion | Elastic Modulus | Poisson’s Ratio |
---|---|---|---|---|---|---|---|
N/m3 | MPa | MPa | ° | MPa | GPa | / | |
No. 5 Coal seam | 12,107.68 | 0.780 | 21.7 | 43 | 1.7546 | 2.2545 | 0.21–0.25 |
Roof | 23,587.52 | 2.709 | 47.67 | 36 | 20.2701 | 7.274 | 0.30–0.33 |
Floor | 23,883.05 | 4.472 | 60.03 | 46 | 9.7177 | 7.862 | 0.31–0.34 |
No. | Lithologic Characters | Thickness (m) | Density (kg/m3) | Tensile Strength (MPa) | Bulk Modulus (MPa) | Shear Modulus (MPa) | Angle of Internal Friction (°) |
---|---|---|---|---|---|---|---|
1 | Fine sandstone | 20.35 | 2630 | 4.472 | 2643 | 1820 | 46 |
2 | No. 4 coal | 0.55 | 1350 | 0.780 | 2139 | 1204 | 43 |
3 | Fine sandstone | 9.70 | 2630 | 4.472 | 2643 | 1820 | 46 |
4 | Siltstone | 10.67 | 2660 | 2.709 | 3550 | 2345 | 36 |
5 | No. 5 coal | 9.17 | 1350 | 0.780 | 2139 | 1204 | 43 |
6 | Fine sandstone | 23.02 | 2630 | 4.472 | 2643 | 1820 | 46 |
Control Technique | Parameter |
---|---|
Roof bolting | The top and left side bolts adopt Φ20 mm left-handed non-longitudinal rib screw thread steel bolt. The length of the rod body is 2200 mm, and its supporting components include a wear-reducing washer and a damping nut. The Φ18 × 1800 mm FRP anchor rod is used for the right-side anchor rod. The length of the anchor rod is 1800 mm and the row spacing is 900 mm. |
Roof anchor rope | The anchor cable adopts a Φ17.8 mm prestressed steel strand with a length of 9300 mm. The prestress of the anchor cable is not less than 30 MPa, and the row spacing is 2700 mm. |
Pressure tap | The boreholes are arranged in the front of the roadway, with a row spacing of 6m and a spacing of 800 mm. There are 6 boreholes in the front of the roadway, with an aperture of 75mm and a hole depth of 10m. |
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Cao, Z.; Liu, H.; Shan, C.; Wang, H.; Kang, H. Surrounding Rock Control Technology of Thick Hard Roof and Hard Coal Seam Roadway under Tectonic Stress. Processes 2024, 12, 1973. https://doi.org/10.3390/pr12091973
Cao Z, Liu H, Shan C, Wang H, Kang H. Surrounding Rock Control Technology of Thick Hard Roof and Hard Coal Seam Roadway under Tectonic Stress. Processes. 2024; 12(9):1973. https://doi.org/10.3390/pr12091973
Chicago/Turabian StyleCao, Zhongzong, Honglin Liu, Chengfang Shan, Hongzhi Wang, and Haitong Kang. 2024. "Surrounding Rock Control Technology of Thick Hard Roof and Hard Coal Seam Roadway under Tectonic Stress" Processes 12, no. 9: 1973. https://doi.org/10.3390/pr12091973
APA StyleCao, Z., Liu, H., Shan, C., Wang, H., & Kang, H. (2024). Surrounding Rock Control Technology of Thick Hard Roof and Hard Coal Seam Roadway under Tectonic Stress. Processes, 12(9), 1973. https://doi.org/10.3390/pr12091973