Study on the Evolution Law of Overlying Rock Fractures in Multiple Coal Seams with Shallow Burial and Nearby Repeated Mining
Abstract
1. Introduction
2. Project Overview
3. Numerical Simulation
3.1. Analysis of Development Patterns of Mine Seams Fractures
3.2. Analysis of the Impact of Mining Parameters on the Variation of Overlying Rock Fracture Height
3.3. Analysis of Fracture Porosity in the Mining Area
4. Development Height of Overburden Fractured Zone
5. Engineering Validation
6. Conclusions
- (1)
- A discrete element numerical model of granular flow in the near-surface rock structure of the Zhangjiamao mining area was established. The following conclusions were drawn from the analysis: as the 2−2 coal seam continues to advance, the number of fractures in the overlying rock increases and expands, developing upward in a new arch-shaped form with gradual penetration. During the mining of the 4−2 coal seam, gas migration channels are formed between the medium-grained sandstone and sandy mudstone in the main roof, and the fractures around the 4−2 coal seam show a “trapezoidal” distribution. A statistical analysis of the number of fractures after the mining of the 2−2 and 4−2 coal seams shows that the number of fractures developed during the mining of the 2−2 coal seam is three times that during the mining of the 4−2 coal seam.
- (2)
- The evolution of the porosity within the overlying strata under coal seam mining was tracked, and it was found that the porosity evolves through a dynamic process of ‘central initiation—upward expansion (to the surface)—compaction and convergence of the goaf—continued development at the surface.’ Due to the cumulative damage to the overlying strata caused by mining of the upper coal seam, the porosity response during mining of the lower coal seam is more sensitive and expands more rapidly. High porosity zones remain concentrated near the mining area, but the affected range continues to spread toward the surface, showing a pattern of ‘deep concentration, shallow wide distribution.’ Mining of the lower coal seam is a critical stage for controlling surface subsidence and fracture seepage risks, and particular attention should be paid to the expansion of the surface fracture network and the potential enhancement of water conductivity it may trigger.
- (3)
- A fitting formula for the height of the overlying rock fracture zone under multi-coal seam mining conditions was developed, and its applicability was verified by comparison with numerical simulation and field measurement results.
- (4)
- Based on the results of numerical simulations, a relational equation among mining height, mining distance, and fracture height was established. The related findings can provide a reference for surface subsidence management in the Shendong mining area.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Rock Strata | Bulk Modulus K/GPa | Shear Modulus G/GPa | Density ρ/(kg·m3) | Internal Friction Angle f/° | Internal Cohesion /MPa | Tensile Strength Rf/MPa | Lamination Thickness |
|---|---|---|---|---|---|---|---|
| Loess | 0.25 | 0.11 | 2300 | 15 | 0.8 | 0.7 | 46.45 |
| Laterite | 0.42 | 0.19 | 2400 | 20 | 1.2 | 0.9 | 10.05 |
| Siltstone | 10.80 | 8.13 | 2709 | 38 | 2.75 | 1.84 | 10.20 |
| Silty mudstone | 2.57 | 2.70 | 2510 | 30 | 2.19 | 0.72 | 4.75 |
| Muddy siltstone | 4.00 | 5.15 | 2520 | 30 | 1.0 | 0.8 | 4.52 |
| Medium-grained sandstone | 5.92 | 6.03 | 2490 | 40 | 2.00 | 1.10 | 16.50 |
| Siltstone | 3.50 | 1.70 | 2050 | 32 | 1.7 | 0.2 | 6.69 |
| silty mudstone | 2.57 | 2.70 | 2510 | 30 | 2.19 | 0.72 | 5.21 |
| 2−2 coal | 1.0 | 1.70 | 1450 | 20 | 0.6 | 0.15 | 7.70 |
| Silty mudstone | 2.57 | 2.70 | 2510 | 30 | 2.19 | 0.72 | 15.07 |
| Medium-grained sandstone | 5.92 | 6.03 | 2490 | 40 | 2.00 | 1.10 | 5.40 |
| Siltstone | 10.8 | 8.13 | 2709 | 38 | 2.75 | 1.84 | 6.53 |
| 4−2 coal | 4.56 | 1.98 | 1380 | 32 | 1.19 | 0.16 | 2.30 |
| Siltstone | 10.8 | 8.13 | 2709 | 38 | 2.75 | 1.84 | 13.67 |
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Zhang, Y.; Zhang, Y.; Zhao, Y.; Bai, X. Study on the Evolution Law of Overlying Rock Fractures in Multiple Coal Seams with Shallow Burial and Nearby Repeated Mining. Processes 2026, 14, 121. https://doi.org/10.3390/pr14010121
Zhang Y, Zhang Y, Zhao Y, Bai X. Study on the Evolution Law of Overlying Rock Fractures in Multiple Coal Seams with Shallow Burial and Nearby Repeated Mining. Processes. 2026; 14(1):121. https://doi.org/10.3390/pr14010121
Chicago/Turabian StyleZhang, Yu, Yuezhi Zhang, Yadong Zhao, and Xiaoning Bai. 2026. "Study on the Evolution Law of Overlying Rock Fractures in Multiple Coal Seams with Shallow Burial and Nearby Repeated Mining" Processes 14, no. 1: 121. https://doi.org/10.3390/pr14010121
APA StyleZhang, Y., Zhang, Y., Zhao, Y., & Bai, X. (2026). Study on the Evolution Law of Overlying Rock Fractures in Multiple Coal Seams with Shallow Burial and Nearby Repeated Mining. Processes, 14(1), 121. https://doi.org/10.3390/pr14010121
