Evaluating the Effect of Overburden Depth, Mining Height, and Support Density on Coal Rib Damage Using DEM Modeling
Abstract
:1. Introduction
2. Literature Investigation of Rib Stability
3. Rib Spall Modeling
- Crushing and wedging of the rib into the roadway;
- The development of shear planes within the roof that extends down into the floor, causing the base of the rib to bulge into the excavation accompanied by floor heave;
- Blocky or slabby, which involves slabs or chunks of coal sloughing off the rib along a particular cleat or fracture surface;
- Toppling in the upper ribside when the lower rib becomes degraded, leading to the upper rib overhanging.
3.1. Calibration of the Contact Parameters
3.2. In Situ Model Setup
4. Analysis of Modeling Results
4.1. Crack and Stress Damage Analysis
4.2. Deformation Damage Analysis
4.3. Effect of Mining Height
4.4. Rib Support Evaluation
5. Practical Application
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Intact Rock Properties | Coal [29] | Sandstone [30] |
---|---|---|
Poisson’s ratio (-) | 0.25 | 0.3 |
Young’s modulus (GPa) | 2.55 | 23.44 |
Uniaxial compressive strength (MPa) | 19.70 | 84.30 |
Tensile Strength (MPa) | 1.97 | 8.43 (10% of UCS) |
Rock and coal mass properties | ||
Poisson’s ratio (-) | 0.20 | 0.25 |
Young’s modulus (GPa) | 2.55 | 8.87 |
Uniaxial compressive strength (MPa) | 6.55 | 48.90 |
Tensile Strength (MPa) | 0.66 (10% of UCS) | 4.90 (10% of UCS) |
Properties | Coal Mass | Rock Mass | |
---|---|---|---|
Rock matrix | Young’s modulus (GPa) | 2.55 | 18.0 |
Poisson’s ratio (-) | 0.20 | 0.25 | |
Contact | Shear stiffness, (GPa/m/m) | 41.2 | 250.0 |
Normal stiffness, (GPa/m/m) | 103.0 | 2760.0 | |
0.4 | 0.10 | ||
Cohesion, (MPa) | 5.0 | 26.0 | |
Friction angle, (degrees) | 0.0 | 0.0 | |
Tensile strength, (MPa) | 1.70 | 12.0 | |
Residual friction angle, (degree) | 25.0 | 35.0 | |
Residual tensile strength, (MPa) | 0.0 | 0.0 | |
Residual cohesion, (MPa) | 0.0 | 0.0 |
Cable | Grout | Beam | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Density (kg/m3) | Young’s Modulus (GPa) | Yield Stress (MPa) | Yield Strength (kN) | Failure Strain (%) | Stiffness Kbond (MN/m/m) | Shear Sbond (kN/m) | Shear Modulus (GPa) | Young’s Modulus (GPa) | Yield Stress (MPa) | Interface Normal Stiffness (GPa/m) | Interface Shear Stiffness (GPa/m) | Interface Friction (deg.) |
7800.00 | 200.00 | 500.00 | 200.00 | 15.00 | 1.92 | 750.00 | 9.00 | 200.00 | 500.00 | 10.00 | 10.00 | 35 |
Depth (m) | Coal Rib Bolt Length (m) | ||
---|---|---|---|
200 | 1.2 | 1.5 | 1.8 |
250 | |||
300 |
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Sunkpal, M.; Sherizadeh, T.; Guner, D. Evaluating the Effect of Overburden Depth, Mining Height, and Support Density on Coal Rib Damage Using DEM Modeling. Geosciences 2023, 13, 77. https://doi.org/10.3390/geosciences13030077
Sunkpal M, Sherizadeh T, Guner D. Evaluating the Effect of Overburden Depth, Mining Height, and Support Density on Coal Rib Damage Using DEM Modeling. Geosciences. 2023; 13(3):77. https://doi.org/10.3390/geosciences13030077
Chicago/Turabian StyleSunkpal, Maurice, Taghi Sherizadeh, and Dogukan Guner. 2023. "Evaluating the Effect of Overburden Depth, Mining Height, and Support Density on Coal Rib Damage Using DEM Modeling" Geosciences 13, no. 3: 77. https://doi.org/10.3390/geosciences13030077
APA StyleSunkpal, M., Sherizadeh, T., & Guner, D. (2023). Evaluating the Effect of Overburden Depth, Mining Height, and Support Density on Coal Rib Damage Using DEM Modeling. Geosciences, 13(3), 77. https://doi.org/10.3390/geosciences13030077