Influence of Small Radius Curved Shield Tunneling Excavation on Displacement of Surrounding Soil
Abstract
:1. Introduction
2. Engineering Background
2.1. Engineering Overview
2.2. Engineering Geological Conditions
2.3. Monitoring Scheme
3. Numerical Modelling
3.1. Model and Boundary Conditions
3.2. Simulation Process
4. Field Monitoring Data and Model Validation
4.1. Surface Settlement
4.2. Horizontal Displacement
5. Influence Analysis of Displacement of Surrounding Soil
5.1. Influence of Unbalanced Thrust on Displacement of Surrounding Soil
5.1.1. Influence of Unbalanced Thrust on Surface Settlement
5.1.2. Influence of Unbalanced Thrust on Horizontal Displacement
5.2. Influence of Curvature Radius on Displacement of Surrounding Soil
5.2.1. Influence of Curvature Radius on Surface Settlement
5.2.2. Influence of Curvature Radius on Horizontal Displacement
5.3. Influence of Grouting Pressure on Displacement of Surrounding Soil
5.3.1. Influence of Grouting Pressure on Surface Settlement
5.3.2. Influence of Grouting Pressure on Horizontal Displacement
5.4. Paramener Sensitivity Analysis
6. Conclusions
- (1)
- By contrast to field monitoring data, the validity of numerical simulation could be verified by the small differences of maximum surface settlement of 1.21 mm, maximum horizontal displacement of surrounding soil of 0.31 mm at the outer side and 0.75 mm at the inner side.
- (2)
- Obvious increases in displacement of surrounding soil could be found when the thrust ratio of tail jacks increased from 1.0 to 2.5. (Absolute) value of maximum surface settlement increased from 24.08 mm to 34.61 mm with an increment of 43.7%. For horizontal displacements of soil at the outer side and inner side of curved tunnel axis, the increments were 13.8% and 16.7%, respectively. The increases should be attributed to intensive uneven thrust distribution and disturbance to surrounding soil.
- (3)
- Increases in curvature radius generally decrease displacement of surrounding soil. During curvature radius increases from 250 m to 500 m, the (absolute) decrements of maximum surface settlement, horizontal displacements of soil at the outer side and inner side of curved tunnel axis were 11.3%, 12.5% and 14.0%, respectively. The reason might be the decreases in frequency of adjustment of shield advances and the amount of over excavation.
- (4)
- On the whole, the restrain effect of increased grouting pressure to displacement of surrounding soil is obvious. When the grouting pressure increased from 0.1 MPa to 0.25 MPa, the decrement of (absolute) value of maximum surface settlement, horizontal displacements of soil at the outer side and inner side were 26.7%, 11.2% and 19.0%, respectively. Enhancement of fill effect on tail void and reinforcement of surrounding soil with the grouting pressure might be the reason.
- (5)
- Results of multiple linear regression analysis reveal that thrust ratio and grouting pressure were significant factors for maximum surface settlement, especially during the shield excavation stage.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Soil Layer | Thickness (m) | Poisson’s Ratio | Compression Modulus (MPa) | Friction Angle (°) | Unit Weight (kN/m3) | Cohesion (kPa) |
---|---|---|---|---|---|---|
Fill | 2.0 | 0.30 | 3.6 | 15.6 | 18.4 | 17.0 |
Clayey silt | 20.6 | 0.31 | 9.4 | 14.3 | 19.6 | 22.5 |
Silty clay | 17.4 | 0.27 | 7.9 | 19.6 | 19.7 | 33.8 |
Monitoring Items | Instruments | Standard Deviation | Frequency |
---|---|---|---|
Surface settlement | Level gauge | 0.3 mm/km | Once a day (d * ≤ 20 m) Once every two days (d > 20 m) |
Horizontal displacement | Slip inclinometer | 0.02 mm/500 mm | Once a day |
Materials | Unit Weight (kN/m3) | Elastic Modulus (MPa) | Poisson’s Ratio |
---|---|---|---|
Segments | 27 | 2.93×104 | 0.20 |
Shield shell | 76 | 2.15×105 | 0.30 |
Grouting layer (Before solidification) | 25 | 1.7 | 0.32 |
Grouting layer (After solidification) | 28 | 17 | 0.25 |
Grouting Pressure (MPa) | Corresponding Maximum Surface Settlement (mm) | Source of Data |
---|---|---|
0.10, 0.15, 0.20, 0.25 | −27.29, −24.23, −21.96, −20.01 | This study |
0.10, 0.15, 0.20, 0.30 | −10.25, −9.42, −8.59, −7.15 | Mei et al. [1] |
0.05, 0.10, 0.15, 0.20, 0.30, 0.40, 0.50 | −37.66, −30.78, −24.88, −20.58, −15.30, −12.23, −11.74 | Lou et al. [16] |
0.10, 0.20, 0.30, 0.40, 0.50 | −11.52, −10.08, −9.24, −9.04, −8.73 | Feng et al. [30] |
Project | Coefficient | Standard Error | Standardized Regression Coefficient | T-Statistic | Significance |
---|---|---|---|---|---|
Constant | 28.901 | 1.462 | - | 19.763 | 1.088 × 10−6 |
T | 6.306 | 0.363 | 0.780 | 17.396 | 2.313 × 10−6 * |
R | −0.011 | 0.003 | −0.185 | −4.165 | 0.006 * |
p | −48.316 | 4.846 | −0.438 | −9.970 | 5.893 × 10−5 * |
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Yang, B.; Zhang, C.; Su, N.; Xiao, Z. Influence of Small Radius Curved Shield Tunneling Excavation on Displacement of Surrounding Soil. Buildings 2023, 13, 803. https://doi.org/10.3390/buildings13030803
Yang B, Zhang C, Su N, Xiao Z. Influence of Small Radius Curved Shield Tunneling Excavation on Displacement of Surrounding Soil. Buildings. 2023; 13(3):803. https://doi.org/10.3390/buildings13030803
Chicago/Turabian StyleYang, Bo, Chengyao Zhang, Na Su, and Zhaoran Xiao. 2023. "Influence of Small Radius Curved Shield Tunneling Excavation on Displacement of Surrounding Soil" Buildings 13, no. 3: 803. https://doi.org/10.3390/buildings13030803
APA StyleYang, B., Zhang, C., Su, N., & Xiao, Z. (2023). Influence of Small Radius Curved Shield Tunneling Excavation on Displacement of Surrounding Soil. Buildings, 13(3), 803. https://doi.org/10.3390/buildings13030803