Energy Accumulation Characteristics and Induced Rockburst Mechanism of Roadway Surrounding Rock under Multiple Mining Disturbances: A Case Study
Abstract
:1. Introduction
2. Project Background
2.1. Project Overview
2.2. Failure Characteristics of the Accident Roadway
- (1)
- The accident roadway showed obvious characteristics of sectional damage. The 4203 haulage roadway is divided into five sections from the end of the working face outwards. As shown in Figure 1, the surrounding rock of the roadway within a range of 0–41 m in front of the working face was severely damaged (length 41 m). The transfer machine head was inclined, with one side close to the roof and the other side located 350 mm away from the roof, as shown in Figure 2. The roof with a range of 41–51 m in front of the working face was basically intact (length 10 m). The 51–70 m section in front of the working face presented evidence of the impact roof collapse (length 19 m), and its height of 2.0–2.5 m reached the direct roof. Most of the anchor rods on the side were exposed, the coal side was collapsed. The 70–200 m section in front of the working face was the damaged section outside the roof falling area, with 70–115 m being more severe. The roof and sides appeared to have a net pocket, and the floor bulge was severe. The normal rock pressure manifestation section was located 200 m away from the front of the working face, and the roadway surrounding rock was basically intact.
- (2)
- The accident roadway had typical dynamic damage characteristics. Some single hydraulic props were bent at 0–41 m in front of the working face. Within the 19-m-long roof fall and wall collapse section, more than 30 sets of roof bolts were broken, accounting for nearly 30% of the total number of bolts, most of them were broken without necking, and all 19 anchor cables were pulled apart, which is evidently different from the breaking and failure characteristics of bolts and anchor cables in ordinary roof fall accidents, as shown in Figure 3. According to the data provided by the Center of Seismological Network of Shanxi Province, the SHC Shenchi Station (~42 km away), PIG Pianguan Station (~83 km away), KEL Kelan Station (~80 km away), and L1410 Yuanping Station (~78 km away) all experienced obvious “earthquake anomalies” when the accident occurred.
3. Establishment of a Numerical Model
3.1. Numerical Calculation Model
3.2. Calculation Schemes
4. Stress Environment Characteristics of the Roadway Surrounding Rock
4.1. Vector Characteristics of the Mining Roadway Surrounding Rock Stress State
4.2. Distribution Characteristics of the Surrounding Rock Stress Field of Mining Roadway
5. Energy Accumulation Characteristics of the Roadway Surrounding Rock
5.1. Energy Accumulation Characteristics of the Roadway Surrounding Rock
5.2. Super Energy Package of the Roadway Surrounding Rock and Its Evolution Characteristics
5.2.1. Super Energy Package and Its Connotation
5.2.2. Evolution Characteristics of Super Energy Package
6. Discussion
6.1. Energy Evolution Process of the Surrounding Rock of Mining Roadway
- (1)
- Energy input
- (2)
- Energy accumulation
- (3)
- Energy dissipation
- (4)
- Energy release
6.2. Mechanism of Rockburst Induced by Energy Accumulation in the Surrounding Rock of Mining Roadway
7. Conclusions
- (1)
- The stress environment characteristics of the roadway surrounding rock under the influence of multiple mining disturbances were studied and analyzed. The degree of stress concentration in the surrounding rock of the roadway will increase several times as the number of mining disturbances increases. The stress concentration degree of the roadway roof surrounding rock and the uneven degree of the stress field distribution are relatively higher, and the peak maximum principal stress can reach 5–10 times that outside the mining-affected area. During the mining process of the working face, as the distance from the stopping position of the adjacent working face decreases, the stress concentration degree of the roadway surrounding rock continues to increase during its dynamic migration.
- (2)
- Under the influence of multiple mining disturbances, a large amount of elastic energy is accumulated in the roadway surrounding rock and a super-high-density energy package is formed in the roadway surrounding rock. The maximum energy density value in the super energy package can reach 50–185 times that of outside the mining-affected area. The degree of energy accumulation in the super energy package will change significantly with the change of the location of the working face. When the huge energy accumulated in the super energy package reaches a certain limit, it may become the main energy source of the dynamic disaster accident. This relationship can be used as an important theoretical basis for determining the size and location of the energy source of rockburst.
- (3)
- The evolution process of the surrounding rock energy of a mining roadway and the mechanism of induced rockburst are expounded. Under the influence of multiple mining disturbances, the energy of the surrounding rock system of the mining roadway is continuously accumulated and forms a super energy package with a very high energy density value. When the huge energy accumulated in the super energy package is suddenly and violently released, it can cause dynamic destruction of the surrounding rock, such as rock mass ejection, surrounding rock vibration, and roadway roof fall, which are accompanied by the sound of surrounding rock fracture. The degree of energy accumulation in the super energy package is closely related to the magnitude of rockburst.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Stratum | Density/(kg/m3) | Bulk Modulus/GPa | Shear Modulus/GPa | Cohesion/MPa | Friction Angle/° |
---|---|---|---|---|---|
mudstone | 2480 | 9.97 | 7.35 | 4.4 | 32 |
medium-coarse sandstone | 2630 | 18.7 | 22.0 | 6.6 | 36 |
coal seam 4−2 | 1380 | 4.91 | 2.01 | 3.7 | 32 |
fine sandstone | 2540 | 2.7 | 1.6 | 4.0 | 35 |
mudstone | 2480 | 9.97 | 7.35 | 4.6 | 32 |
coal seam 9 | 1380 | 4.91 | 2.01 | 3.8 | 32 |
mudstone | 2480 | 9.97 | 7.35 | 4.2 | 32 |
fine sandstone | 2540 | 2.7 | 1.6 | 4.0 | 35 |
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Ma, Z.; Li, S.; Zhao, X. Energy Accumulation Characteristics and Induced Rockburst Mechanism of Roadway Surrounding Rock under Multiple Mining Disturbances: A Case Study. Sustainability 2023, 15, 9595. https://doi.org/10.3390/su15129595
Ma Z, Li S, Zhao X. Energy Accumulation Characteristics and Induced Rockburst Mechanism of Roadway Surrounding Rock under Multiple Mining Disturbances: A Case Study. Sustainability. 2023; 15(12):9595. https://doi.org/10.3390/su15129595
Chicago/Turabian StyleMa, Zhenkai, Sheng Li, and Xidong Zhao. 2023. "Energy Accumulation Characteristics and Induced Rockburst Mechanism of Roadway Surrounding Rock under Multiple Mining Disturbances: A Case Study" Sustainability 15, no. 12: 9595. https://doi.org/10.3390/su15129595
APA StyleMa, Z., Li, S., & Zhao, X. (2023). Energy Accumulation Characteristics and Induced Rockburst Mechanism of Roadway Surrounding Rock under Multiple Mining Disturbances: A Case Study. Sustainability, 15(12), 9595. https://doi.org/10.3390/su15129595