Reasonable Width of Deteriorated Coal Pillars and Surrounding Rock Control for Roadways in Thick Coal Seams: A Case Study of Datong Coal Mine Area, China
Abstract
1. Introduction
2. Engineering Background
3. Overlying Strata Structure and Layout Principles of Gob-Side Roadways
3.1. Overlying Strata Structure in Gob-Side Roadways
3.2. Fracture Location of the Main Roof Cantilever Beam
3.3. Layout Principle of Gob-Side Roadways
4. Bearing Characteristics of Deteriorated Coal Pillars in Gob-Side Roadways
4.1. Stress Distribution Characteristics of Roadway Surrounding Rocks
4.2. Distribution Characteristics of Plastic Zones in Roadway Surrounding Rocks
4.3. Distribution Characteristics of Plastic-Bearing Zones in Coal Pillars
5. Deformation Law of Surrounding Rocks in Gob-Side Roadways
6. Surrounding Rock Control Scheme of the Asymmetric Truss Anchor Cables
6.1. Roadway Support Parameters
6.2. Characteristics of the Support Structure’s Prestress Field
7. Engineering Practice
8. Conclusions
- (1)
- Key strata above the goaf of the fully mechanized caving face in the extra-thick coal seam formed a structure of low-level cantilever beam and high-level articulated rock beam. The calculated breaking position of the main roof cantilever beam was 15.4 m from the coal wall of the goaf. The optimal location for the roadway was within the inner stress field inside the main roof fracture line. Therefore, the maximum width of the reserved coal pillar should not exceed 9.9 m.
- (2)
- When the coal pillar width ranged from 4 to 14 m during roadway excavation, each width exhibited a stress peak. This peak increased as the coal pillar widened. When the pillar width reached 8 m, the internal stress exceeded the in situ rock stress. In addition, the entire coal pillar entered a fully plastic failure state.
- (3)
- The occupancy rate of the plastic-bearing zone was higher than that in pillars with other widths within the 8–10 m of deteriorated coal pillars. Considering safety and economic factors, the optimal width for the gob-side roadway was determined to be 8 m. Roof subsidence and deformation on the coal pillar side were greater than those on the solid coal side, demonstrating obvious asymmetric deformation in the roadway.
- (4)
- An asymmetric support scheme using truss-anchor cables was proposed. Numerical simulations confirmed that the selected support system established a prestressed field in the surrounding rocks. Field practice further verified the rationality and effectiveness of the designed deteriorated coal pillar width and the asymmetric support system.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Rock Stratum | Density ρ/kg/m3 | Internal Friction Angle φ/° | Bulk Modulus K/GPa | Shear Modulus G/GPa | Cohesion c/MPa |
---|---|---|---|---|---|
Siltstone | 2455 | 32 | 10.2 | 7.7 | 3.98 |
Medium-coarse sandstone | 2780 | 35.9 | 12.4 | 8.51 | 9.10 |
Mudstone | 2102 | 30.1 | 3.8 | 2.53 | 2.58 |
Coal | 1521 | 27 | 4.8 | 0.42 | 2.1 |
Sandy mudstone | 2380 | 30.9 | 4.4 | 3.41 | 3.2 |
Siltstone | 2580 | 32.7 | 10.5 | 7.51 | 8.5 |
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Jin, J.; Wang, Y.; Jin, X.; Qiao, F. Reasonable Width of Deteriorated Coal Pillars and Surrounding Rock Control for Roadways in Thick Coal Seams: A Case Study of Datong Coal Mine Area, China. Appl. Sci. 2025, 15, 10110. https://doi.org/10.3390/app151810110
Jin J, Wang Y, Jin X, Qiao F. Reasonable Width of Deteriorated Coal Pillars and Surrounding Rock Control for Roadways in Thick Coal Seams: A Case Study of Datong Coal Mine Area, China. Applied Sciences. 2025; 15(18):10110. https://doi.org/10.3390/app151810110
Chicago/Turabian StyleJin, Junyu, Yu Wang, Xufeng Jin, and Fang Qiao. 2025. "Reasonable Width of Deteriorated Coal Pillars and Surrounding Rock Control for Roadways in Thick Coal Seams: A Case Study of Datong Coal Mine Area, China" Applied Sciences 15, no. 18: 10110. https://doi.org/10.3390/app151810110
APA StyleJin, J., Wang, Y., Jin, X., & Qiao, F. (2025). Reasonable Width of Deteriorated Coal Pillars and Surrounding Rock Control for Roadways in Thick Coal Seams: A Case Study of Datong Coal Mine Area, China. Applied Sciences, 15(18), 10110. https://doi.org/10.3390/app151810110