Failure Analysis of a Pre-Excavation Double Equipment Withdrawal Channel and Its Control Techniques
Abstract
:1. Introduction
2. Engineering Background
2.1. Geological Survey
2.2. Project Profile
2.3. Roof Structure Detection
3. Theoretical Analysis
3.1. Analysis of the Stress Field in the Mining Area
3.2. Failure Pattern of the Roadway under Asymmetric Pressure
4. Numerical Simulation
4.1. Evolution Law of Mining-Induced Stress during Final Mining
4.2. Evolution Law of the Plastic Zone during Final Mining
5. Surrounding Rock Control Scheme and Application
5.1. EWC Support Technology during the Final Mining Period
- (1)
- Reinforcement support of anchor cable
- (2)
- Support of buttress hydraulics
5.2. Field Monitoring of the MEWC
- (1)
- Working resistance monitoring of buttress hydraulic supports
- (2)
- Surface displacement of the roadway
6. Discussion
7. Conclusions
- 1
- The extraction of coal leads to a stress superposition of the surrounding rock around the goaf, and the maximum stress concentration coefficient can reach 3~5. Under such a non-uniform stress environment, the plastic zone of the surrounding rock is no longer a circular distribution but gradually evolves into a butterfly shape with the increase of the lateral pressure coefficient. The different cross-section shapes of the roadway do not affect the final plastic zone shape.
- 2
- The stress environment of the MEWC is more complex than that of the AEWC. The stress peak value on the side close to the working face of the MEWC first increases and then decreases, and its distribution features are first asymmetric and then symmetric. Meanwhile, the stress on the side close to the coal pillar is always asymmetrical and the stress value keeps increasing. The stress distribution around the AEWC remains almost unchanged; the value increases only slightly.
- 3
- When the MEWC is not affected by mining, the plastic zone around it is only 1 M and symmetrically distributed. With the advance of the working face, the EWC plastic zone gradually expands and presents an asymmetric distribution. Finally, the plastic zone depth of the MEWC is greater than the length of the supporting body, and the surrounding rock tends to be unstable.
- 4
- After analyzing the damage characteristics of the EWCs during the final mining, the use characteristics of EWCs were further analyzed. The service cycle of the EWCs is short, only about one month. Therefore, we proposed a stability control scheme of the MEWC’s surrounding rock, i.e., the reinforcement technologies of anchor cables and buttress hydraulic supports. After the field application, there was no roof fall or wall caving, and the equipment withdrawal process was successful.
Author Contributions
Funding
Conflicts of Interest
References
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Lithology | Density (kg/m 3) | Bulk Modulus /103 MPa | Shear Modulus /10 3 MPa | Friction Angle/(°) | Cohesion /MPa | Tensile Strength/MPa |
---|---|---|---|---|---|---|
Fuyan | 2500 | 3.18 | 1.6 | 32 | 2.21 | 1.22 |
Sandy-mudstone 5 | 2400 | 3.68 | 1.8 | 35 | 2.63 | 1.13 |
Siltstone 2 | 2600 | 2.92 | 1.9 | 31 | 1.52 | 1.08 |
Fine-sandstone 3 | 2500 | 2.52 | 1.7 | 34 | 2.53 | 1.17 |
Siltstone 1 | 2600 | 3.91 | 1.9 | 30 | 1.94 | 1.13 |
2-2 upper-coal | 1400 | 1.89 | 0.6 | 25 | 1.56 | 0.93 |
Sandy-mudstone 4 | 2200 | 2.76 | 1.6 | 32 | 1.72 | 1.26 |
Mudstone | 2300 | 1.76 | 0.8 | 27 | 1.44 | 0.86 |
2-2 middle-coal | 1500 | 1.89 | 0.6 | 25 | 1.52 | 0.93 |
Sandy-mudstone 3 | 2400 | 3.81 | 2.2 | 30 | 1.83 | 1.02 |
Fine-sandstone 2 | 2400 | 3.66 | 1.8 | 28 | 1.76 | 1.15 |
Sandy-mudstone 2 | 2500 | 2.53 | 2.7 | 32 | 2.11 | 1.21 |
Fine-sandstone 1 | 2400 | 3.68 | 1.8 | 31 | 1.92 | 1.12 |
Sandy-mudstone 1 | 2500 | 2.53 | 1.7 | 33 | 2.52 | 1.06 |
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Li, C.; Guo, X.; Lian, X.; Ma, N. Failure Analysis of a Pre-Excavation Double Equipment Withdrawal Channel and Its Control Techniques. Energies 2020, 13, 6368. https://doi.org/10.3390/en13236368
Li C, Guo X, Lian X, Ma N. Failure Analysis of a Pre-Excavation Double Equipment Withdrawal Channel and Its Control Techniques. Energies. 2020; 13(23):6368. https://doi.org/10.3390/en13236368
Chicago/Turabian StyleLi, Chen, Xiaofei Guo, Xiaoyong Lian, and Nianjie Ma. 2020. "Failure Analysis of a Pre-Excavation Double Equipment Withdrawal Channel and Its Control Techniques" Energies 13, no. 23: 6368. https://doi.org/10.3390/en13236368
APA StyleLi, C., Guo, X., Lian, X., & Ma, N. (2020). Failure Analysis of a Pre-Excavation Double Equipment Withdrawal Channel and Its Control Techniques. Energies, 13(23), 6368. https://doi.org/10.3390/en13236368