Study on the Evolution Law of Deep Rock Cracks and the Mechanism of Graded Gradient Support
Abstract
:1. Introduction
2. Study on Evolution Characteristics of Roadway Surrounding Rock Fissure
3. Study on Graded Control Mechanism of Gradient Support
3.1. Graded Control Mechanism of Gradient Support
3.2. Key Ideas of Graded Control for Gradient Support
3.3. Hierarchical Control Principle Model of Gradient Support
4. Discussion on the Injectivity of Reinforcement Materials
4.1. Traditional Reinforcement Material
4.2. Graded Control Technology of Gradient Support
5. Conclusions
- (1)
- After roadway excavation, the stress of the deep surrounding rock is redistributed. Along the radial direction of the roadway, it is divided into stress reduction zone, stress increase zone, and original rock stress zone. According to the permeability characteristics, it can be divided into complete seepage zone, seepage shield zone, and proto-rock seepage zone.
- (2)
- When the crack opening degree of the surrounding rock meets certain conditions, slurries can permeate into the crack. However, the deep surrounding rock cracks are dense and wide near the roadway, while the deep ones are sparse and narrow. Changing the particle size of the material can improve the grouting ability. If the difference between the particle size of the grouting material and the crack is greater than 3 times, the grouting cannot be injected into the crack, and the bridge state will gradually appear at the crack mouth, greatly reducing the reinforcement effect.
- (3)
- The equivalent graded gradient support is proposed, and the mechanical model of gradient support is established. The gradient graded support is adopted to achieve the integration of the surrounding rock and provide support to the broken zone and to the plastic zone. Stratified control of load uniformity ensures that the strength of the surrounding rock in the broken zone and the plastic zone is restored to the initial stress strength or close to the state of the surrounding rock in the elastic zone, that is, the implementation of the original σc1 < σc2 < σc3 transforms into σ*c1 ≈ σ*c2 ≈ σ*c3.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Hong, Z.; Li, Z.; Du, F.; Cao, Z.; Zhu, C. Study on the Evolution Law of Deep Rock Cracks and the Mechanism of Graded Gradient Support. Energies 2023, 16, 1183. https://doi.org/10.3390/en16031183
Hong Z, Li Z, Du F, Cao Z, Zhu C. Study on the Evolution Law of Deep Rock Cracks and the Mechanism of Graded Gradient Support. Energies. 2023; 16(3):1183. https://doi.org/10.3390/en16031183
Chicago/Turabian StyleHong, Zijie, Zhenhua Li, Feng Du, Zhengzheng Cao, and Chun Zhu. 2023. "Study on the Evolution Law of Deep Rock Cracks and the Mechanism of Graded Gradient Support" Energies 16, no. 3: 1183. https://doi.org/10.3390/en16031183
APA StyleHong, Z., Li, Z., Du, F., Cao, Z., & Zhu, C. (2023). Study on the Evolution Law of Deep Rock Cracks and the Mechanism of Graded Gradient Support. Energies, 16(3), 1183. https://doi.org/10.3390/en16031183