Instability Mechanism, Pressure Relief, and Long Anchorage Control Countermeasures for Surrounding Rock of Strong Mining Roadway at Large Mining Height Working Face
Abstract
:1. Introduction
2. Engineering Geological Profiles and Deformation Failure Characteristics of Strong Mining Roadways
2.1. Engineering Geology of Strong Mining Roadways
2.2. Original Support Scheme for Strong Mining Roadway RAR 23205 during Tunneling
- 1.
- Roof Support
- 2.
- The Pillar Sidewall and The Mining Sidewall
2.3. Deformation and Failure Characteristics of Strong Mining Roadways
- Roof broken and stepped severe subsidence
- 2.
- Failure and Instability of Two Sides of The Roadway
- 3.
- Severe Floor Heaving
3. Factors Influencing Large Deformation and Failure of Surrounding Rock of Strong Mining Roadway
3.1. Large Mining Height
3.2. Repeated Mining
3.3. Stress Concentration in the Large Coal Pillar
3.4. Small Thickness of Anchorage Layer in the Roof
4. Large Deformation and Instability Mechanism of Surrounding Rock of Strong Mining Roadways
4.1. Model Establishment
4.2. Simulation Schemes
- The stress evolution and displacement distribution laws of the rock surrounding RAR 23205 without support during the tunneling were simulated and analyzed;
- The stress evolution and displacement distribution of rock surrounding RAR 23205 without support under the first mining disturbance of working face 23204 were simulated;
- The stress evolution and displacement distribution of rock surrounding RAR 23205 without support under the second mining disturbance of working face 23205 were simulated.
4.3. Stress Evolution Law of Surrounding Rock of Strong Mining Roadways
4.3.1. Stress Evolution during Tunneling
4.3.2. Stress Evolution during the First Mining
4.3.3. Stress Evolution during the Second Mining
4.4. Displacement Distribution Law of Roadway-Surrounding Rock under Strong Mining
4.4.1. Displacement Distribution of Surrounding Rock after Tunneling
4.4.2. Displacement Distribution of Surrounding Rock after the First Mining
4.4.3. Displacement Distribution of Surrounding Rock after the Second Mining
5. Pressure Relief and Anchorage Control Schemes and Engineering Practice
5.1. Control Technology for Surrounding Rock of Strong Mining Roadways
5.2. Reinforcement Schemes of Strong Mining Roadways
- 1.
- Long anchorage for roof reinforcement
- 2.
- Pillar sidewall reinforcement
- 3.
- Mining sidewall reinforcement
- 4.
- Self-moving hydraulic support auxiliary supporting for RAR 23205 in the front of the second mining working face of 23205
5.3. Principle and Scheme of Borehole Pressure Relief for Strong Mining Roadways
5.4. Evaluation of the Support Effect of a Strong Mining Roadway
5.4.1. Borehole Detection of Surrounding Rock Structure of Strong Mining Roadways
5.4.2. Deformation Analysis of Roadway-Surrounding Rock
6. New Roadways’ Layout Optimization and Control Countermeasures
- The replacement working face adopts the layout of the “H” mining roadway [30], as shown in Figure 23. When working face 1 is being mined, haulage roadway 2 is arranged as a replacement. When haulage roadway 2 is tunneled to the middle of working face 1, it is perpendicular to working face 1 and used to tunnel the central connection roadway. When the central connection roadway is tunneled to the narrow coal pillar of working face 1, working face 1 is completed, and the goaf is stable, the central connection roadway is tunneled along the left and right directions of the narrow coal pillar to form return air roadway 2. This avoids the stress of a second strong mining and can significantly reduce the deformation of the rock surrounding the mining roadway, reduce the size of the protective coal pillar, reduce the waste of coal resources, improve the recovery rate, and ensure the safe, efficient, and sustainable production of the mine;
- 2.
- Goaf-side entry driving is adopted, and two or three mining areas are arranged to optimize the mining replacement sequence. The goaf-side entry driving with narrow coal pillars avoids the stress concentration, which is conducive to the stability of roadway-surrounding rock and improves the recovery rate of coal resources [31,32,33];
- 3.
- Increasing the thickness of the anchorage layer in the roof and pre-tightening bolts avoids roof separation in the anchorage zone. A reasonable design of bolt (cable) support parameters and the establishment of double layers of shallow bearing circles and deep strengthening circles can not only control the shallow deformation but also constitute a thick anchoring circle to resist disturbance, and it can give full play to the bearing performance of the roadway-surrounding rock to control the deformation of the surrounding rock [34,35].
7. Conclusions
- The factors influencing the large deformation and failure of the rock surrounding a strong mining roadway, i.e., RAR 23204 in Zhuanlongwan Coal Mine, include a large mining height, repeated mining, stress concentration due to a large coal pillar, and a small thickness of the anchorage layer in the roof;
- The stress evolution of the surrounding rock in RAR 23205 during repeated mining is revealed. The results show that the stress peak in the central coal pillar caused by the first and second mining is 23.19 MPa and 27.49 MPa, respectively, and the stress concentration coefficients are 4.538 and 5.379, respectively. The corresponding distances between the stress peak point and the pillar sidewall are 13 m and 10.5 m, respectively. The deformations of the roadway caused by lateral abutment pressure from the second mining in RAR 23205 are far greater than those of the tunneling and the first mining, and the deformation of the pillar sidewall and roof is especially severe. The influence of the second mining greatly increases the difficulty of roadway maintenance;
- The countermeasures of pressure relief of large-diameter boreholes in the large coal pillar and long anchorage for roof reinforcement were carried out to control the stability of a strong mining roadway, i.e., RAR 23205. Field measurements indicated that deformations of RAR 23205 in the thick coal seam could be efficiently controlled. The maximum deformation of the surrounding rock of the roadway was 50 mm, which meets the safety and efficiency requirements of the coal mine;
- Roadways’ layout optimization and control countermeasures include adopting the layout mode of the “H” type for new mining roadways and goaf-side entry driving with a narrow coal pillar, increasing the thickness of the anchorage layer in the roof, and pre-tightening the force of bolts. These measures should increase the stability of the rock surrounding strong mining roadways.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
haulage roadway 23204 | HR 23204 |
return air roadway 23205 | RAR 23205 |
return air roadway 23204 | RAR 23204 |
fiberglass-reinforced plastic bolt | FRP bolt |
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Lithology | Thickness (m) | Density (kg·m−3) | Bulk Modulus (GPa) | Shear Modulus (GPa) | Angle of Internal Friction (°) | Cohesion (MPa) | Tensile Strength (MPa) |
---|---|---|---|---|---|---|---|
Sandstone | 12.51 | 2670 | 6.05 | 1.35 | 38.33 | 5.44 | 3.89 |
Muddy siltstone | 3.03 | 2387 | 4.86 | 2.43 | 35.1 | 2.9 | 2.18 |
Sandstone | 22.25 | 2670 | 6.05 | 1.35 | 38.33 | 5.44 | 3.89 |
Mudstone | 3.86 | 2325 | 5.05 | 2.66 | 34.76 | 3.4 | 2.05 |
Sandstone | 5.84 | 2670 | 6.05 | 1.35 | 38.33 | 5.44 | 3.89 |
Coal II-3(1) | 1.79 | 1430 | 1.32 | 0.49 | 30 | 2.5 | 1.8 |
Fine sandstone | 3.60 | 2365 | 2.73 | 1.41 | 33.95 | 5.5 | 3.18 |
Silty mudstone | 10.44 | 2387 | 2.01 | 1.98 | 35.1 | 2.9 | 3.41 |
Coal II-3 | 4.80 | 1430 | 1.32 | 0.49 | 30 | 2.5 | 1.8 |
Muddy siltstone | 2.26 | 2387 | 4.86 | 2.43 | 35.1 | 2.9 | 2.18 |
Coal II-4 | 0.98 | 1430 | 1.32 | 0.49 | 30 | 2.5 | 1.8 |
Sandstone | 10.94 | 2670 | 6.05 | 1.35 | 38.33 | 5.44 | 3.89 |
Mudstone | 1.90 | 2325 | 5.05 | 2.66 | 34.76 | 3.4 | 2.05 |
Coal III-2 | 1.74 | 1430 | 1.32 | 0.49 | 30 | 2.5 | 1.8 |
Silty sandstone | 4.33 | 2219 | 5.0 | 2.78 | 37.62 | 2.2 | 1.97 |
Surrounding Rock | The Tunneling | The First Mining | The Second Mining (Distance from Working Face 23205) | ||||||
---|---|---|---|---|---|---|---|---|---|
0 m | 10 m | 20 m | 30 m | 40 m | 50 m | 60 m | |||
Roof | 75.29 | 262.9 | 462.58 | 420.07 | 382.77 | 353.63 | 336.93 | 326.89 | 312.9 |
Floor | 16.07 | 64.9 | 99.91 | 92.22 | 86.97 | 83.55 | 78.54 | 75.83 | 69.62 |
Pillar sidewall | 104.89 | 563.4 | 737.07 | 709.65 | 671.27 | 649.67 | 625.38 | 614.18 | 598.86 |
Mining sidewall | 104.89 | 133.5 | 216.67 | 208.09 | 198.97 | 186.85 | 181.65 | 165.31 | 159.66 |
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Qian, D.; Jiao, H.; Deng, J.; Yang, J.; Jiao, M.; Xian, G.; Yu, C.; Zhu, Y.; Liu, J.; Huang, S.; et al. Instability Mechanism, Pressure Relief, and Long Anchorage Control Countermeasures for Surrounding Rock of Strong Mining Roadway at Large Mining Height Working Face. Minerals 2023, 13, 391. https://doi.org/10.3390/min13030391
Qian D, Jiao H, Deng J, Yang J, Jiao M, Xian G, Yu C, Zhu Y, Liu J, Huang S, et al. Instability Mechanism, Pressure Relief, and Long Anchorage Control Countermeasures for Surrounding Rock of Strong Mining Roadway at Large Mining Height Working Face. Minerals. 2023; 13(3):391. https://doi.org/10.3390/min13030391
Chicago/Turabian StyleQian, Deyu, Hexi Jiao, Jinping Deng, Jingxuan Yang, Mingzhi Jiao, Guihong Xian, Chenshi Yu, Yingli Zhu, Jiale Liu, Sen Huang, and et al. 2023. "Instability Mechanism, Pressure Relief, and Long Anchorage Control Countermeasures for Surrounding Rock of Strong Mining Roadway at Large Mining Height Working Face" Minerals 13, no. 3: 391. https://doi.org/10.3390/min13030391
APA StyleQian, D., Jiao, H., Deng, J., Yang, J., Jiao, M., Xian, G., Yu, C., Zhu, Y., Liu, J., Huang, S., & Li, B. (2023). Instability Mechanism, Pressure Relief, and Long Anchorage Control Countermeasures for Surrounding Rock of Strong Mining Roadway at Large Mining Height Working Face. Minerals, 13(3), 391. https://doi.org/10.3390/min13030391