Directional Presplitting Roof Cutting for Surface Subsidence Control in Extra-Thick Longwall Top-Coal Caving Under Thick Unconsolidated Overburden
Abstract
1. Introduction
2. Engineering Background
2.1. Overview of the 6118 Working Face
2.2. Surface Subsidence Characteristics Above the 6118 Working Face
3. Discontinuous Surface Deformation and Subsidence-Control Mechanisms Under Roof-Cutting Conditions
3.1. Key-Stratum Fracture Model Under Directional Presplitting
3.2. Equivalent Mining-Depth Model for Boundary Inward Shift Induced by Roof Cutting
3.3. Influence of the Key Stratum on Overburden Movement Before and After Roof Cutting
4. Parameter Optimization of Directional Roof Cutting and Verification of Subsidence Control for Linear Infrastructure
4.1. Effect of Presplitting-Plane Position on the Key-Stratum Failure Mode
4.2. Surface Deformation Characteristics Before and After Roof Cutting
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Method | Subsidence-Control Effect | Recovery Ratio | Economic Cost | Applicability to Extra-Thick LTCC Under Thick Unconsolidated Overburden |
|---|---|---|---|---|
| Backfill mining | Strong overall control of subsidence and deformation | Low to moderate | High | Conditionally applicable, but large-scale implementation is difficult under high-intensity LTCC because of the large filling demand and system complexity |
| Strip mining | Moderate | Low | Moderate | Limited applicability; difficult to reconcile with high-output LTCC and results in considerable coal loss |
| Protective coal pillars | Moderate to strong in local protection zones | Low | Moderate (with high resource loss) | Applicable only under specific protection requirements; difficult to achieve both high recovery and wide-range subsidence control |
| Directional presplitting roof cutting | Moderate to strong, especially for narrowing the influence range and reducing deformation gradients near protected infrastructure | High | Moderate | Highly suitable as an active structural-control measure for extra-thick LTCC under thick unconsolidated overburden, although parameter optimization and field verification are required |
| Survey Line | Maximum Subsidence, Wmax (mm) | Subsidence Coefficient, kn (–) | Initiation Distance (m) | Advance Influence Angle | Dip-Direction Influence Range (m) | Lag Distance/Post-Mining Influence Distance (m) | Lag Angle of Peak Subsidence Rate (°) |
|---|---|---|---|---|---|---|---|
| A | 12,210 | 0.6105 | N/A | N/A | N/A | N/A | 73.29 |
| B | 3950 | 0.1975 | N/A | N/A | 113.86 | 247.26 | 70.28 |
| C | 3730 | 0.1865 | N/A | N/A | 81.56 | N/A | 69.08 |
| D | 16,839 | 0.842 | 142.03 | 56.99 | N/A | 252.18 | 76.41 |
| No. | Lithology | Thickness (m) | E (GPa) | ν | γ (kN·m−3) | c (MPa) | φ (°) | T (MPa) |
|---|---|---|---|---|---|---|---|---|
| 24 | Loess | 68 | 0.81 | 0.354 | 18.44 | 0.085 | 45 | 0.06 |
| 23 | Red clay | 55 | 0.81 | 0.354 | 18.44 | 0.085 | 45 | 0.06 |
| 22 | Coarse-grained sandstone | 5 | 9.47 | 0.184 | 20.70 | 2.6 | 36 | 2 |
| 21 | Sandy mudstone | 8 | 5.51 | 0.147 | 18.74 | 2.16 | 36 | 6 |
| 20 | Medium-grained sandstone | 3 | 11.51 | 0.151 | 24.03 | 2.7 | 42 | 0.52 |
| 19 | Mudstone | 2 | 6.75 | 0.125 | 19.42 | 1 | 30 | 0.6 |
| 18 | Claystone | 8 | 4.44 | 0.386 | 18.54 | 2.8 | 25 | 0.18 |
| 17 | Mudstone | 3 | 6.75 | 0.125 | 19.42 | 1 | 30 | 0.6 |
| 16 | Fine-grained sandstone | 1 | 12.41 | 0.241 | 25.80 | 2.5 | 42 | 0.12 |
| 15 | Mudstone | 13 | 6.75 | 0.125 | 19.42 | 1 | 30 | 0.6 |
| 14 | Weathered clay | 3 | 0.55 | 0.147 | 17.66 | 0.2 | 30 | 0.06 |
| 13 | Claystone | 4 | 5.51 | 0.147 | 18.54 | 2.16 | 36 | 0.6 |
| 12 | Coarse-grained sandstone | 2 | 9.47 | 0.184 | 20.70 | 2.6 | 36 | 2 |
| 11 | Claystone | 2 | 5.51 | 0.147 | 18.54 | 2.16 | 36 | 0.6 |
| 10 | Coarse-grained sandstone | 14 | 9.47 | 0.184 | 20.70 | 2.6 | 36 | 2 |
| 9 | Weathered clay | 2 | 0.55 | 0.147 | 17.66 | 0.2 | 30 | 0.06 |
| 8 | No. 8 coal seam | 2 | 1.82 | 0.298 | 15.11 | 2.5 | 39 | 2 |
| 7 | Mudstone | 4 | 6.75 | 0.125 | 19.42 | 1 | 30 | 0.6 |
| 6 | Medium-grained sandstone | 11 | 11.51 | 0.151 | 24.03 | 2.7 | 42 | 0.52 |
| 5 | Coarse-grained sandstone | 2 | 9.47 | 0.184 | 20.70 | 2.6 | 36 | 2 |
| 4 | Medium-grained sandstone | 9 | 11.51 | 0.151 | 24.03 | 2.7 | 42 | 0.52 |
| 3 | Coarse-grained sandstone | 6 | 9.47 | 0.184 | 20.7 | 2.6 | 36 | 2 |
| 2 | No. 6 coal seam | 22.00 | 1.82 | 0.298 | 15.11 | 2.5 | 39 | 2 |
| 1 | Mudstone | 1.04 | 6.75 | 0.125 | 19.42 | 1.0 | 30 | 0.6 |
| Parameter | Non-Cutting Case | Roof-Cutting Mining | Trend |
|---|---|---|---|
| Initiation distance (m) | 142.03 | 66.11~66.12 | Significantly decreased |
| Advance influence angle (°) | 56.99~59.66 | 73.19 | Markedly increased |
| Dip-direction influence range (m) | 81.56~113.86 | 39.25~89.47 | Significantly converged |
| Dip boundary angle (°) | 69.5 | 74.55~76.03 | Increased (steeper boundary) |
| Lag angle of peak subsidence rate (°) | 72.27 | 75.25 | Overall increased |
| Lagging influence distance (m) | 247~252 | 250~280 | Comparable (same order of magnitude) |
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Wang, H.; Zhao, W. Directional Presplitting Roof Cutting for Surface Subsidence Control in Extra-Thick Longwall Top-Coal Caving Under Thick Unconsolidated Overburden. Processes 2026, 14, 1218. https://doi.org/10.3390/pr14081218
Wang H, Zhao W. Directional Presplitting Roof Cutting for Surface Subsidence Control in Extra-Thick Longwall Top-Coal Caving Under Thick Unconsolidated Overburden. Processes. 2026; 14(8):1218. https://doi.org/10.3390/pr14081218
Chicago/Turabian StyleWang, Hongsheng, and Wenrui Zhao. 2026. "Directional Presplitting Roof Cutting for Surface Subsidence Control in Extra-Thick Longwall Top-Coal Caving Under Thick Unconsolidated Overburden" Processes 14, no. 8: 1218. https://doi.org/10.3390/pr14081218
APA StyleWang, H., & Zhao, W. (2026). Directional Presplitting Roof Cutting for Surface Subsidence Control in Extra-Thick Longwall Top-Coal Caving Under Thick Unconsolidated Overburden. Processes, 14(8), 1218. https://doi.org/10.3390/pr14081218
