Research on Strata Deformation Induced by EPB Tunneling in Round Gravel Stratum and Its Control Technology
Abstract
:1. Introduction
2. Field Test Plan
2.1. Project Overview
2.2. Geological and Hydrological Conditions
2.3. Field Monitoring Content and Layout
3. Measured Analysis of Stratum Deformation
3.1. Surface Settlement Analysis
3.2. Analysis of Vertical Displacement of Stratum
3.3. Analysis of Horizontal Displacement of Stratum
4. Analysis of Shield Tunneling Parameters
4.1. Chamber Earth Pressure and Thrust Force
4.2. Torque of Cutter
4.3. Grouting Pressure and Grouting Volume
5. Discussion
5.1. Influence of Chamber Earth Pressure and Thrust Force on Surface Deformation
5.2. Influence of Torque of Cutter on Surface Deformation
5.3. Effects of Grouting Pressure and Grouting Volume on Surface Deformation
5.4. Discussion on Vertical Displacement Anomaly of Stratum in North Line
6. Conclusions
- (1)
- When the EPB shield passes through the round gravel stratum, the chamber earth pressure, thrust force, torque of the cutter, grouting pressure, and grouting volume are all positively correlated with the surface. Before the shield arrives at the section, the influence of chamber earth pressure, thrust force, and torque of the cutter on the surface deformation are mainly affected by the change in the stratum soil pressure in the tunneling stage, and the chamber earth pressure is the tunneling parameter that affects the surface deformation the most.In the stage of the shield tail passing section, the grouting volume and grouting pressure on the surface deformation are mainly affected by the change in the void ratio of the stratum, and the grouting volume is the tunneling parameter that has the greatest influence on the surface deformation.
- (2)
- During the process of the EPB shield passing through the round gravel stratum, the deformation curve of the surface corresponds to the Gauss curve, and the curve law conforms to the settlement form of the Peck formula. The heave value of the southern line reaches the maximum during the crossing stage, and the northern line reaches the maximum when it approaches the monitoring surface.
- (3)
- The stratum around the southern line was heaved before the shield arriving section, fluctuated during the crossing stage, decreased after the shield tail pass section, and finally stabilized. The closer it is to the tunnel, the greater the degree of disturbance and the greater the change in the vertical displacement of the ground surface. The stratum displacement of the north line is weak before the shield arriving section reaches the heave degree, and it is in a settlement state during the crossing stage and after the shield tail passing section. Combining the three aspects of soil layer thickness, soil compressive modulus, earth stress release, and grouting pressure offset, the problem that the settlement value at the depth of 6 m is greater than that at the depth of 8 m and 10 m is explained.
- (4)
- The horizontal displacement of the soil increases along with the depth fluctuation and the maximum value is observed at a depth of 10 m. In the tunneling stage, the minimum value occurs when the shield does not reach the monitoring section, and the maximum value is reached when the shield tail passes the section. The closer to the tunnel axis, the greater the horizontal displacement along with the depth.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Geotechnical Category | Water Content /(%) | Natural Unit Weight (kN/m3) | Specific Gravity of Soil Particle | Void Ratio | Liquid Limit (%) | Plastic Limit (%) | Poisson Ratio | Compression Modulus (MPa) | Cohesion (kN/m2) | Friction Angle (°) |
---|---|---|---|---|---|---|---|---|---|---|
①2 Plain fill | 30.9 | 18.2 | 2.73 | 0.938 | 38.7 | 23.3 | 0.34 | 3.2 | 10 | 10 |
②2 Silty clay | 26.7 | 19.5 | 2.72 | 0.733 | 40.1 | 24.2 | 0.36 | 5.5 | 43 | 17 |
④1 Muddy silty clay | 45.4 | 17 | 2.73 | 1.287 | 38 | 23.1 | 0.4 | 2.3 | 13 | 9 |
⑤1 Silty clay | 26.1 | 19.5 | 2.73 | 0.733 | 40 | 24.1 | 0.36 | 5.5 | 43 | 17 |
⑨4 Round gravel | 22.5 | 20.5 | 2.7 | - | - | 0.26 | 17 | 2 | 34 | |
(20)1 Fully weathered argillaceous siltstone | 21.9 | 19.6 | 19.6 | 0.674 | 40.1 | 24.1 | 0.28 | 6 | 25 | 27 |
(20)2 Highly weathered argillaceous siltstone | 20.5 | 20.3 | 20.3 | - | - | - | 0.28 | 6 | 35 | 15.5 |
(20)3 Medium weathered argillaceous siltstone | 22.4 | 24.5 | 24.5 | - | - | - | 0.28 | Incompressible | 170 | 33 |
Monitoring Section | Stage of Shield Tunneling | ||||
---|---|---|---|---|---|
Cutter before Section | Cutter below Section | Crossing Section | Tail Pass Section | Final Settlement | |
SSP-S-330 | 13% | 19% | 5% | 57% | 6% |
SSP-S-350 | 18% | 16% | 6% | 42% | 18% |
Monitoring Section | Stage of Shield Tunneling | ||||
---|---|---|---|---|---|
Cutter before Section | Cutter below Section | Crossing Section | Tail Pass Section | Final Settlement | |
SSP-N-350 | 9% | 11% | 12% | 44% | 24% |
SSP-N-370 | 6% | 12% | 16% | 46% | 20% |
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Wang, Z.; Feng, W.; Wu, S.; Wu, P.; Xu, S.; Yao, Z.; Sun, J. Research on Strata Deformation Induced by EPB Tunneling in Round Gravel Stratum and Its Control Technology. Appl. Sci. 2022, 12, 10553. https://doi.org/10.3390/app122010553
Wang Z, Feng W, Wu S, Wu P, Xu S, Yao Z, Sun J. Research on Strata Deformation Induced by EPB Tunneling in Round Gravel Stratum and Its Control Technology. Applied Sciences. 2022; 12(20):10553. https://doi.org/10.3390/app122010553
Chicago/Turabian StyleWang, Zhe, Weihao Feng, Shuwei Wu, Pengfei Wu, Sifa Xu, Zewei Yao, and Jiuchun Sun. 2022. "Research on Strata Deformation Induced by EPB Tunneling in Round Gravel Stratum and Its Control Technology" Applied Sciences 12, no. 20: 10553. https://doi.org/10.3390/app122010553
APA StyleWang, Z., Feng, W., Wu, S., Wu, P., Xu, S., Yao, Z., & Sun, J. (2022). Research on Strata Deformation Induced by EPB Tunneling in Round Gravel Stratum and Its Control Technology. Applied Sciences, 12(20), 10553. https://doi.org/10.3390/app122010553