Development Characteristics of Mining-Induced Fractures in Weakly Cemented Overburden During the First Layer Mining of Ultra-Thick Coal Seam: Similar Simulation and Field Measurement
Abstract
1. Introduction
2. Overview and Strata Occurrence Characteristics of WF 1101
3. Theoretical Height Prediction of the “WCFZ” in Thick Coal Seam Mining
4. Similarity Simulation Study on Fractures in WCO During Ultra-Thick Coal Seam Mining
4.1. Physical Model Construction
4.2. Fracture and Deformation Evolution Characteristics of WCO
4.3. Evolution Patterns of Overburden Displacement
4.4. Fractal Dimension Evolution Characteristics of Fractures in WCO
4.5. Evolution Patterns of the WCFZ in WCO
5. Measured Development Height of the WCFZ in WCO
5.1. Borehole Layout and Design for Exploration
5.2. Analysis of Detection Results
6. Discussion
7. Conclusions
- (1)
- TS guides and controls the evolution of mining-induced fractures in WCO. The height of the WCFZ exhibits a non-linear increasing trend with WF advancement, reaching a maximum height of 189 m and a height-to-mining ratio of 10.5 upon achieving full mining-induced stability. BST spaces primarily develop beneath TS and propagate in a jumping manner following the rupture of these strata. The height of both fractures and BST shows a significant positive correlation with the WF advancement distance.
- (2)
- Under the influence of ultra-thick coal seam mining, the overburden displacement field transitions from an “arch-shaped” to a “trapezoidal” pattern in the WF advancement direction, exhibiting symmetrical distribution. Simultaneously, due to compaction effects of the overlying strata, the subsidence on the open-off cut side and WF side is significantly less than that in the central goaf, resulting in distinct zoning characteristics in the displacement field.
- (3)
- The evolution characteristics of mining-induced fractures in WCO were quantitatively characterized using D. Under the guiding and controlling role of TS, the D of overburden fractures exhibited a “step-like” dynamic evolution pattern. The maximum D reached 1.49 after the fracture of the TS-1. Following the fracture of TS-2, near-field fractures were significantly compacted, resulting in dimension reduction. The D stabilized at 1.36–1.37 when the WF reached full mining-induced stability.
- (4)
- Field borehole detection results indicate that the interbedded zones of WCO UTCS mining are prone to failure, which partially suppresses the development height and rate of the WCFZ. The caved zone exhibits high rock fragmentation, with fragmented rock masses showing cementation-like phenomena. At the 1101 WF of Zhundong No. 2 Mine, the measured caved zone height ranges from 66 to 78 m (caving-to-mining ratio: 4.17–5.34), and the WCFZ height ranges from 161 to 178 m (fracture-to-mining ratio: 9.73–12.18).
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Empirical Equation | Result | Reference | ||
|---|---|---|---|---|
| Height of the caving zone | (1) | 54~72 | [11] | |
| (2) | 11.03~14.03 | [12,13] | ||
| (3) | 8.32~10.72 | [12,13] | ||
| (4) | 31.24~40.76 | [15] | ||
| Height of WCFZ | (5) | 25.61~33.61 | [12,13] | |
| (6) | 47.43 | [12,13] | ||
| (7) | 15.37~21.37 | [12,13] | ||
| (8) | 106.62~143.55 | [14] | ||
| (9) | 116.88~133.30 | [15] | ||
| (10) | 155.59 | [16] | ||
| (11) | 268.10 | [17] | ||
| (12) | 101.76~117.36 | [21] | ||
| No. | Rock Layer | Field Floor Depth/m | Field Thickness/m | Thickness/cm | Water Content/kg | Fine Sand/kg | Lime/kg | Gypsum/kg | Mix Ratio No. |
|---|---|---|---|---|---|---|---|---|---|
| 1 | Silty mudstone | 343.99 | 25.44 | 12.72 | 17.10 | 201.83 | 22.71 | 2.52 | 891 |
| 2 | Siltstone | 348.09 | 4.10 | 2.05 | 2.76 | 32.02 | 3.20 | 1.37 | 773 |
| 3 | Fine sandstone | 352.66 | 4.57 | 2.29 | 2.95 | 36.34 | 3.63 | 0.91 | 882 |
| 4 | Medium-grained sandstone | 363.53 | 10.87 | 5.44 | 7.31 | 83.23 | 12.48 | 1.39 | 691 |
| 5 | Silty mudstone | 422.98 | 59.45 | 29.73 | 39.96 | 471.73 | 53.07 | 5.89 | 891 |
| 6 | Carbonaceous mudstone | 426.21 | 3.24 | 1.62 | 2.24 | 26.46 | 2.32 | 0.99 | 873 |
| 7 | Silty mudstone | 435.57 | 9.35 | 4.68 | 6.29 | 74.26 | 8.35 | 0.93 | 891 |
| 8 | Fine sandstone | 438.77 | 3.20 | 1.6 | 2.06 | 25.39 | 2.54 | 0.64 | 882 |
| 9 | Silty mudstone | 489.33 | 50.56 | 25.82 | 34.70 | 409.69 | 46.09 | 5.11 | 891 |
| 10 | Siltstone | 494.95 | 5.62 | 2.81 | 3.78 | 43.89 | 4.39 | 1.88 | 773 |
| 11 | Coarse-grained sandstone | 500.10 | 5.15 | 2.58 | 3.32 | 40.20 | 4.02 | 1.02 | 882 |
| 12 | Silty mudstone | 508.42 | 8.32 | 4.16 | 5.59 | 66.01 | 7.43 | 0.82 | 891 |
| 13 | Fine sandstone | 513.40 | 4.98 | 2.49 | 3.21 | 39.51 | 3.95 | 0.99 | 882 |
| 14 | Argillaceous siltstone | 521.89 | 8.49 | 4.25 | 5.47 | 67.43 | 6.74 | 1.69 | 882 |
| 15 | Coarse-grained sandstone | 524.89 | 3.00 | 1.5 | 1.93 | 23.80 | 2.38 | 0.60 | 882 |
| 16 | Coal Seam B1 | 578.89 | 55.00 | 26.25 | 36.31 | 428.75 | 37.52 | 16.08 | 873 |
| 17 | Argillaceous siltstone | 588.69 | 8.80 | 4.4 | 5.67 | 69.81 | 6.98 | 1.75 | 882 |
| 18 | Fine sandstone | 598.83 | 10.14 | 5.07 | 7.34 | 90.44 | 9.04 | 2.26 | 882 |
| 19 | Coarse-grained sandstone | 608.99 | 10.16 | 5.08 | 6.31 | 77.74 | 7.77 | 1.95 | 882 |
| Borehole No. | Depth/m | Mining Height/m | Height of Caved Zone/m | Caving-to-Mining Ratio | Height of WCFZ/m | Fracture-to-Mining Ratio |
|---|---|---|---|---|---|---|
| ZK-1 | 460.66 | 14.62 | 66 | 4.51 | 165 | 11.29 |
| ZK-3 | 431.49 | 14.62 | 78 | 5.34 | 178 | 12.18 |
| ZK-4 | 547.80 | 16.54 | 69 | 4.17 | 161 | 9.73 |
| Method | Height of Caved Zone/m | Relative Error | Caving-to-Mining Ratio | Method | Height of WCFZ/m | Relative Error | Caving-to-Mining Ratio |
|---|---|---|---|---|---|---|---|
| Field measurements | 66~78 | - | 4.17~5.34 | - | 161~178 | - | 9.73~12.18 |
| Equation (1) | 43.86~72 | −33.55%~−7.69% | 3.00~4.35 | Equation (5) | 25.05~33.61 | −84.44%~−81.12% | 1.71~2.03 |
| Equation (2) | 10.42~14.03 | −84.21%~−82.01% | 0.71~0.96 | Equation (6) | 43.24~47.43 | −73.15%~−73.36% | 2.96~2.87 |
| Equation (3) | 7.65~10.72 | −88.42%~−86.25% | 0.52~0.65 | Equation (7) | 15.03~21.37 | −90.67%~−88.00% | 1.03~0.93 |
| Equation (4) | 27.04~40.76 | −59.02~−47.73% | 1.85~2.46 | Equation (8) | 91.12~143.55 | −43.41%~−19.35% | 6.23~8.68 |
| Equation (9) | 101.37~133.30 | −37.04%~−25.11% | 6.93~8.06 | ||||
| Equation (10) | 126.87~155.59 | −21.20%~−12.59% | 8.68~9.41 | ||||
| Equation (11) | 251.29~268.10 | 56.08%~50.62% | 17.19~16.21 | ||||
| Equation (12) | 87.24~117.36 | −45.81%~−34.07% | 5.97~7.10 | ||||
| Similarity simulation | - | 189 | −6.18% | 10.5 |
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Deng, Y.; Pan, W.; Liu, S.; Cui, B.; Zhang, K. Development Characteristics of Mining-Induced Fractures in Weakly Cemented Overburden During the First Layer Mining of Ultra-Thick Coal Seam: Similar Simulation and Field Measurement. Fractal Fract. 2025, 9, 718. https://doi.org/10.3390/fractalfract9110718
Deng Y, Pan W, Liu S, Cui B, Zhang K. Development Characteristics of Mining-Induced Fractures in Weakly Cemented Overburden During the First Layer Mining of Ultra-Thick Coal Seam: Similar Simulation and Field Measurement. Fractal and Fractional. 2025; 9(11):718. https://doi.org/10.3390/fractalfract9110718
Chicago/Turabian StyleDeng, Yupei, Weidong Pan, Shiqi Liu, Bo Cui, and Kunming Zhang. 2025. "Development Characteristics of Mining-Induced Fractures in Weakly Cemented Overburden During the First Layer Mining of Ultra-Thick Coal Seam: Similar Simulation and Field Measurement" Fractal and Fractional 9, no. 11: 718. https://doi.org/10.3390/fractalfract9110718
APA StyleDeng, Y., Pan, W., Liu, S., Cui, B., & Zhang, K. (2025). Development Characteristics of Mining-Induced Fractures in Weakly Cemented Overburden During the First Layer Mining of Ultra-Thick Coal Seam: Similar Simulation and Field Measurement. Fractal and Fractional, 9(11), 718. https://doi.org/10.3390/fractalfract9110718

