Analysis of Collapse Mechanism and Treatment Evaluation of a Deeply Buried Hard Rock Tunnel
Abstract
:1. Introduction
2. Project Overview
3. Mechanism Analysis of Tunnel Collapse
3.1. Description of Collapse Process
3.2. Collapse Characteristics and Types
3.3. Analysis of Collapse Causes
- The regional structure is mainly the fault structure, and the surrounding rock is mainly breccia tuffaceous sandstone, tuff, and sedimentary tuff of the Guantou formation of the Lower Cretaceous system. The lithology changes greatly, with strong rock alteration and well-developed joint fissures; the rock mass is of a fragmentary mosaic structure. The stress release during the excavation of surrounding rock tends to cause extrusion and internal bulging deformation, and the pressure stress concentration causes tensile fracture damage.
- The site mainly consists of eroded and denuded low mountain and hilly landforms. The tunnel passes through the surface reservoir, and the groundwater is sensitive to the tunnel construction. Under the influence of groundwater erosion and softening, the shear strength of the rock mass is reduced, and the cohesion between rock layers is reduced, which may induce shear slip near the structural zone.
- The tunnel uses a full-section blasting method, which significantly disturbs and crushes the surrounding rock mass. When the tensile stress on the structural surface is greater than its shear strength, the unstable block will be destroyed and shear slip will occur along the weak structural surface, causing the exposed broken block to flake off.
- Due to the failure of timely support after tunnel excavation, the surrounding rock was exposed for a long time, which lead to fracture development and stress state changes in the plastic loosening zone of the surrounding rock. As a result, the surrounding rock lost its stability and fell off.
- The excavation condition of surrounding rock is inconsistent with the geological survey report. Geological prospecting data show that this section is identified as grade III surrounding rock by geology, and the initial spray and hanging net support design was adopted based on geological prospecting data. In fact, under the influence of structure, the surrounding rock is more broken, the joints are more developed, and the blasting disturbance has a greater impact, which is more likely to result in the instability of surrounding rock due to the insufficient support strength.
3.4. Mechanism Analysis of Tunnel Collapse
3.4.1. Analysis of the Mobility of Crack Cone in Structural Plane
- Calculation of the unit normal vector of each structural surface
- Calculation of the edge vector of each structural plane
- Calculation of the direction parameter matrix of each structural plane
- Determination of the discrimination matrix corresponding to the blocke
3.4.2. Analysis of the Mobility of Block Cone on Free Face
4. Collapse Treatment Plan
- Safe evacuation
- Advance bolt support
- Steel arch support
- Cavity filling
- Step method construction
- Monitoring and trackingn
5. Evaluation of Treatment of Collapse
5.1. Monitoring Results of Surrounding Rock Deformation
5.2. Monitoring Results of Surrounding Rock Pressure
6. Conclusions
Author Contributions
Conflicts of Interest
References
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Structural Plane | Inclination (°) | Dip Angle (°) | Remarks |
---|---|---|---|
F1 | 250 | 20 | Shelving fault |
P1 | 185 | 75 | |
P2 | 65 | 45 |
Block Number | Crevice Cone | Block Cone | Movable or Not |
---|---|---|---|
000 | Nonempty set | Nonempty set | No |
001 | Nonempty set | Nonempty set | No |
010 | Nonempty set | Nonempty set | No |
100 | Nonempty set | Nonempty set | No |
011 | Nonempty set | Nonempty set | No |
110 | Nonempty set | Nonempty set | No |
101 | Nonempty set | Nonempty set | No |
111 | Nonempty set | Empty set | Yes |
Grade of Surrounding Rock | Bolt | Steel Mesh | Shotcrete | Steel Arch |
---|---|---|---|---|
IV | Φ25 bolt, spacing 1.0 × 1.0 m, Length 3 m | A6 | 20 cm C25 concrete | I16 steel arch, spacing 0.8 m |
III | Φ25 bolt, spacing 1.5 × 1.5 m, Length 2.5 m | A6 | 10 cm C25 concrete | / |
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Qiao, S.; Cai, Z.; Tan, J.; Xu, P.; Zhang, Y. Analysis of Collapse Mechanism and Treatment Evaluation of a Deeply Buried Hard Rock Tunnel. Appl. Sci. 2020, 10, 4294. https://doi.org/10.3390/app10124294
Qiao S, Cai Z, Tan J, Xu P, Zhang Y. Analysis of Collapse Mechanism and Treatment Evaluation of a Deeply Buried Hard Rock Tunnel. Applied Sciences. 2020; 10(12):4294. https://doi.org/10.3390/app10124294
Chicago/Turabian StyleQiao, Shifan, Ziyong Cai, Junkun Tan, Ping Xu, and Yonggang Zhang. 2020. "Analysis of Collapse Mechanism and Treatment Evaluation of a Deeply Buried Hard Rock Tunnel" Applied Sciences 10, no. 12: 4294. https://doi.org/10.3390/app10124294
APA StyleQiao, S., Cai, Z., Tan, J., Xu, P., & Zhang, Y. (2020). Analysis of Collapse Mechanism and Treatment Evaluation of a Deeply Buried Hard Rock Tunnel. Applied Sciences, 10(12), 4294. https://doi.org/10.3390/app10124294