Study of Key Technology of Gob-Side Entry Retention in a High Gas Outburst Coal Seam in the Karst Mountain Area
Abstract
:1. Introduction
2. Engineering Survey
3. Gas Prevention and Control Measures
3.1. Mining the Liberated Seam
3.2. Gas Pre-Drainage
3.3. Evaluation of Gas Pre-Drainage Effect
3.3.1. Gas Pre-Drainage Rate
3.3.2. Residual Gas Content and Residual Gas Pressure
4. Determination of Key Technology of Roof Cutting
4.1. Numerical Simulation
4.1.1. Roof Cutting Height
4.1.2. Roof Cutting Angle
4.2. Calculation of Roof Cutting Seam Parameters
4.2.1. Calculation of Roof Cutting Height
4.2.2. Calculation of the Roof Cutting Angle
4.3. Pre-Splitting Blasting Parameters
4.3.1. Spacing of Blast Holes
4.3.2. Blasting Parameters
5. Engineering Practice
5.1. Roadway Support
5.1.1. Retaining Gangue Support
5.1.2. Advanced Temporary Support
5.1.3. Delayed Temporary Support
5.2. On-Site Monitoring
5.2.1. Advanced Influence Range of Roof Cutting
5.2.2. Harmful Gas Monitoring in Mined-Out Areas
6. Conclusions
- (1)
- The 39114 working face of the Honglin coal mine adopts the methods of mining the protective layer and gas pre-drainage to eliminate outbursts in the coal seam. After coal seam outburst elimination, the CH4 content of adjacent coal seams in the 39114 working face decreased by 50.2% and 56.1%, respectively, indicating that the mining of the liberated seam and gas pre-drainage can effectively control coal seam gas.
- (2)
- UDEC numerical simulation software was used to simulate different roof cutting heights and cutting angles. It was found that increasing the roof cutting height or cutting angle within a certain range can improve the volume of gangue fragmentation and reduce the unfilled space in the mined-out area, indicating that there are optimal values for cutting height and cutting angle.
- (3)
- After engineering practice was carried out on the 39114 working face by the use of determined optimal roof cutting parameters, the average maximum deformation of the roof was 98.3 mm and that of the two ribs was 62.3 mm. This shows that the technology of roof cutting, and keeping pressure-relief retaining roadways along mined-out areas, can effectively control roadway deformation.
- (4)
- The concentrations of CH4 and CO in the mined-out areas were monitored. The gas concentration in the mined-out areas fluctuated up and down around 0.3% and the CO concentration fluctuated up and down around 0.06%, indicating that retaining gangue support with an air duct cloth can effectively control the generation and escape of harmful gases.
- (5)
- The technology of gob-side entry retaining by roof cutting was feasible in the high gas outburst mine, and achieves the goal of safe and efficient mining.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Coal Seam | Original Gas Content (m3/t) | Original Gas Pressure (MPa) |
---|---|---|
7# | 12.46 | 0.08–0.58 |
9# | 13.9374 | 0.12–0.69 |
15# | 3.6 | 0.05–0.4 |
39114 Return Airway | ||||
Number | Azimuth (°) | Dip Angle (°) | Design Length (m) | Spacing (m) |
1 | 89 | +28 | 47 | 0.38 |
2 | 110 | +25 | 48 | 0.38 |
3 | 126 | +20 | 55 | 0.38 |
4 | 138 | +15 | 64 | 0.38 |
5 | 146 | +11 | 76 | 0.38 |
6 | 152 | +8 | 88 | 0.38 |
39114 Haulage Roadway | ||||
Number | Azimuth (°) | Dip Angle (°) | Design Length (m) | Spacing (m) |
1 | 77 | +29 | 48.5 | 0.3 |
2 | 60 | +28 | 54.2 | 0.3 |
3 | 47 | +26 | 63 | 0.3 |
4 | 38 | +23 | 74 | 0.3 |
5 | 31 | +21 | 85.5 | 0.3 |
6 | 27 | +19 | 98.2 | 0.3 |
Location | Number | Depth (m) | Azimuth(°) | Residual Gas Pressure (MPa) | Residual Gas Content (m3/t) |
---|---|---|---|---|---|
39114 return airway (along the 9# coal seam) | 1 | 44 | 180 | 0.092 | 6.1033 |
87 | 180 | 0.094 | 6.1695 | ||
2 | 44 | 180 | 0.101 | 6.3613 | |
3 | 87 | 180 | 0.081 | 5.7999 | |
4 | 44 | 180 | 0.098 | 6.2805 | |
5 | 87 | 180 | 0.093 | 6.1316 | |
6 | 46 | 180 | 0.091 | 6.0843 | |
39114 haulage roadway (along 9# coal seam) | 1 | 54.2 | 0 | 0.08 | 5.7639 |
2 | 80.56 | 0 | 0.088 | 5.9996 | |
3 | 48 | 0 | 0.101 | 6.3538 | |
4 | 82 | 0 | 0.089 | 6.0343 | |
5 | 53 | 0 | 0.095 | 6.1963 | |
6 | 87 | 0 | 0.095 | 6.204 | |
Average value | 0.092 | 6.114 | |||
39114 return airway (through the 7# coal seam) | 1 | 48.6 | 89 | 0.123 | 6.1639 |
2 | 76 | 146 | 0.13 | 6.3053 | |
39114 haulage roadway (through the 7# coal seam) | 1 | 45 | 35 | 0.121 | 6.1187 |
2 | 101.84 | 35 | 0.128 | 6.2756 | |
Average value | 0.126 | 6.2159 |
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Ma, Z.; Zhang, D.; Cao, Y.; Yang, W.; Xu, B. Study of Key Technology of Gob-Side Entry Retention in a High Gas Outburst Coal Seam in the Karst Mountain Area. Energies 2022, 15, 4161. https://doi.org/10.3390/en15114161
Ma Z, Zhang D, Cao Y, Yang W, Xu B. Study of Key Technology of Gob-Side Entry Retention in a High Gas Outburst Coal Seam in the Karst Mountain Area. Energies. 2022; 15(11):4161. https://doi.org/10.3390/en15114161
Chicago/Turabian StyleMa, Zhenqian, Dongyue Zhang, Yunqin Cao, Wei Yang, and Biao Xu. 2022. "Study of Key Technology of Gob-Side Entry Retention in a High Gas Outburst Coal Seam in the Karst Mountain Area" Energies 15, no. 11: 4161. https://doi.org/10.3390/en15114161
APA StyleMa, Z., Zhang, D., Cao, Y., Yang, W., & Xu, B. (2022). Study of Key Technology of Gob-Side Entry Retention in a High Gas Outburst Coal Seam in the Karst Mountain Area. Energies, 15(11), 4161. https://doi.org/10.3390/en15114161