Evolution Laws of Water-Flowing Fracture Zone and Mine Pressure in Mining Shallow-Buried, Hard, and Extra-Thick Coal Seams
Abstract
:1. Introduction
2. Overview of the Study Area
2.1. Geological Condition
2.2. Aquifer Condition
3. Mine Pressure and Roadway Deformation
3.1. Simulation Scheme
3.2. Abutment Pressure
3.3. The Deformation and Stress of the Extended Open-Off Cut
3.4. The Deformation and Stress of the Maingate
4. Roof Breaking and WFFZ Development
4.1. Physical Similarity Simulation Scheme
4.1.1. Model Parameters
4.1.2. Mining and Monitoring of the Model
4.2. Roof Breaking Characteristics
4.3. Development of the WFFZ
4.4. Front Abutment Pressure
5. Engineering Practice
5.1. Working Face Weighting and Support Effect
5.2. Deformation of Maingate and Extended Open-Off Cut
5.3. Field Detection of WFFZ
5.3.1. Detection Scheme
5.3.2. WFFZ Observations
6. Conclusions
- The numerical simulation results show that the influence distance of abutment pressure and the abutment pressure peak and its position relative to the working face continue to increase as the working face advances. After the advance distance exceeds the length of the working face (155 m), the abutment pressure tends to stabilize; when the working face advances to 370 m, the front and side abutment pressure peaks are 3.9 MPa and 4.1 MPa, respectively, and are located at 10 m and 11 m in front of the working face: the corresponding zones of influence ahead of the working face reach 19 m and 21 m, respectively. The abutment pressure peak concentration factor is less than 2, which shows that the mining pressure intensity is weak. The extended open-off cut and maingate within 20 m in front of the working face are affected by mining and should be reinforced prior to mining.
- The physical similarity simulation shows that the first collapse distance of the 110501 working face is 32 m and the average collapse distance is 26 m; the development of the WFFZ can be divided into the initial development stage (advancing over the first 86.4 m), rapid development stage (advancing from 86.4 to 112 m), and the stable stage (advancing beyond 112 m); the maximum heights of the WFFZ in these three stages are 31.2 m, 53.6 m, and 83 m, respectively.
- The average weighting interval of the 110501 top coal caving face (as measured in-situ) is 26.9 m, which is similar to the collapse distance obtained from physical similarity modelling; the maximum dynamic load factor during the weighting period is 1.16. The deformation of the extended open-off cut and maingate is mainly within 20 m in front of the working face; the maximum development height of the WFFZ is 87 m according to in situ monitoring, which is close to the physical similar simulation results, but quite different from those arising from use of the empirical formula. The rock pressure in SHCSHRFB is relatively weak, which is significantly different from that of typical shallow-buried thin bedrock working faces.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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SN | Lithology | Thickness (m) | Density (kg/m3) | Bulk Modulus (MPa) | Shear Modulus (MPa) | Tension Strength (MPa) | Friction Angle (°) |
---|---|---|---|---|---|---|---|
1 | Gritstone | 34.08 | 2490 | 2679 | 1764 | 1.49 | 43.15 |
2 | Glutenite | 1.80 | 2540 | 2886 | 1901 | 1.72 | 39.6 |
3 | Packsand | 7.40 | 2630 | 2643 | 1820 | 1.46 | 40.23 |
4 | Gritstone | 11.68 | 2490 | 2679 | 1764 | 1.49 | 43.15 |
5 | Glutenite | 1.70 | 2540 | 2886 | 1901 | 1.72 | 39.6 |
6 | Coal | 0.60 | 1350 | 2139 | 1204 | 0.78 | 48.23 |
7 | Packsand | 13.8 | 2630 | 2643 | 1820 | 1.46 | 40.23 |
8 | Siltstone | 19.17 | 2660 | 3550 | 2345 | 1.38 | 39.6 |
9 | Packsand | 2.28 | 2630 | 2643 | 1820 | 1.46 | 40.23 |
10 | Coal | 0.80 | 1350 | 2139 | 1204 | 0.78 | 48.23 |
11 | Siltstone | 14.06 | 2660 | 3550 | 2345 | 1.38 | 39.6 |
12 | Siltstone | 5 | 2660 | 3550 | 2345 | 1.38 | 39.6 |
13 | No. 5 coal | 8.6 | 1350 | 2139 | 1204 | 0.78 | 48.23 |
14 | Packsand | 7.99 | 2630 | 2643 | 1820 | 1.46 | 40.23 |
15 | Glutenite | 1.50 | 2540 | 2886 | 1901 | 1.72 | 39.6 |
16 | Medium sandstone | 17.70 | 2630 | 2643 | 1820 | 1.46 | 40.23 |
Advance Distance | 60 m | 155 m | 270 m | 370 m | |
---|---|---|---|---|---|
Abutment Pressure | |||||
Front abutment pressure | Peak stress | 2.9 | 3.4 | 3.8 | 3.9 |
Peak stress distance from working face | 6 | 8 | 9 | 10 | |
Influence distance | 12 | 16 | 18 | 19 | |
Side abutment pressure | Peak stress | 2.8 | 3.8 | 4.0 | 4.1 |
Peak stress distance from working face | 5 | 9 | 10 | 11 | |
Influence distance | 10 | 16 | 19 | 21 |
Parameter | Value | Parameter | Value |
---|---|---|---|
Model length | 2.5 m | Geometric ratio | 100:1 |
Model width | 0.3 m | Stress ratio | 167:1 |
Model height | 1317 mm | Movement ratio | 10:1 |
Coal seam thickness | 86 mm | Density ratio | 1.667:1 |
Mining height | 40 mm | Mining step distance | 3.2 m |
Top coal height | 46 mm | Mining step interval | 30 min |
SN | Lithology | Sand (kg) | Calcium Carbonate (kg) | Gypsum (kg) | Thickness (cm) | Cumulative Thickness (cm) |
---|---|---|---|---|---|---|
1 | Gritstone | 252.00 | 25.20 | 10.80 | 32.00 | 131.70 |
2 | Packsand | 53.28 | 4.00 | 9.32 | 7.40 | 99.70 |
3 | Gritstone | 91.35 | 9.14 | 3.92 | 11.60 | 92.30 |
4 | Glutenite | 20.25 | 3.38 | 3.38 | 3.00 | 80.70 |
5 | Packsand | 102.24 | 7.67 | 17.89 | 14.20 | 77.70 |
6 | Siltstone | 129.60 | 21.60 | 21.60 | 19.20 | 63.50 |
7 | Packsand | 21.60 | 1.62 | 3.78 | 3.00 | 44.30 |
8 | Siltstone | 94.50 | 15.75 | 15.75 | 14.00 | 41.30 |
9 | Siltstone | 42.00 | 2.52 | 5.88 | 5.60 | 27.30 |
10 | No. 5 coal | 64.50 | 3.87 | 9.03 | 8.60 | 21.70 |
11 | Packsand | 57.60 | 4.32 | 10.08 | 8.00 | 13.10 |
12 | Glutenite | 24.30 | 4.05 | 4.05 | 3.60 | 5.10 |
13 | Medium sandstone | 11.57 | 0.58 | 1.35 | 1.50 | 1.50 |
Weighting Times | 1 | 2 | 3 | 4 | 5 | 6 | 7 | Mean |
---|---|---|---|---|---|---|---|---|
Pressure/MPa | 29.5 | 30.9 | 30.0 | 31.5 | 32.0 | 32.2 | 32.2 | 30.8 |
Dynamic factor | 1.08 | 1.13 | 1.13 | 1.10 | 1.15 | 1.16 | 1.16 | 1.11 |
Weighting distance/m | 33.5 | 26.3 | 25 | 26 | 27 | 25.6 | 25.6 | 25.8 |
Borehole Name | Diameter | Angle | Length | Height | Distance from 110501 Face | Type |
---|---|---|---|---|---|---|
S1 | 75 mm | 75° | 117 m | 90 m | 100 m ahead | Control borehole |
S2 | 75 mm | 75° | 117 m | 90 m | 200 m behind | Observation borehole |
S3 | 75 mm | 65° | 117 m | 90 m | 200 m behind | Observation borehole |
S4 | 75 mm | 65° | 117 m | 90 m | 300 m behind | Observation borehole |
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Wu, Z.; Sun, Q.; Wang, Y. Evolution Laws of Water-Flowing Fracture Zone and Mine Pressure in Mining Shallow-Buried, Hard, and Extra-Thick Coal Seams. Appl. Sci. 2024, 14, 2915. https://doi.org/10.3390/app14072915
Wu Z, Sun Q, Wang Y. Evolution Laws of Water-Flowing Fracture Zone and Mine Pressure in Mining Shallow-Buried, Hard, and Extra-Thick Coal Seams. Applied Sciences. 2024; 14(7):2915. https://doi.org/10.3390/app14072915
Chicago/Turabian StyleWu, Zhongya, Qiang Sun, and Yunbo Wang. 2024. "Evolution Laws of Water-Flowing Fracture Zone and Mine Pressure in Mining Shallow-Buried, Hard, and Extra-Thick Coal Seams" Applied Sciences 14, no. 7: 2915. https://doi.org/10.3390/app14072915
APA StyleWu, Z., Sun, Q., & Wang, Y. (2024). Evolution Laws of Water-Flowing Fracture Zone and Mine Pressure in Mining Shallow-Buried, Hard, and Extra-Thick Coal Seams. Applied Sciences, 14(7), 2915. https://doi.org/10.3390/app14072915