Two-Stage Analysis Method for the Mechanical Response of Adjacent Existing Tunnels Caused by Foundation Pit Excavation
<p>The schematic diagram of the solution process of the two-stage analysis method.</p> "> Figure 2
<p>Mechanical calculation model of the influence of foundation pit excavation on the adjacent tunnel.</p> "> Figure 2 Cont.
<p>Mechanical calculation model of the influence of foundation pit excavation on the adjacent tunnel.</p> "> Figure 3
<p>The influence diagram of engineering dewatering on the additional stress of soil.</p> "> Figure 4
<p>Calculation diagram of additional stress considering the double-hole effect.</p> "> Figure 5
<p>Interaction model between the foundation and tunnel.</p> "> Figure 6
<p>Tunnel discretization schematic diagram.</p> "> Figure 7
<p>Tunnel model.</p> "> Figure 8
<p>Vertical displacement of a tunnel under different shear stiffnesses.</p> "> Figure 9
<p>Tunnel section stress diagram.</p> "> Figure 10
<p>A schematic diagram of an axisymmetric load applied to the surface of a multilayer foundation.</p> "> Figure 11
<p>Dislocation platform and corner of the shield tunnel.</p> "> Figure 12
<p>Mechanical calculation model considering the end constraint effect.</p> "> Figure 13
<p>Relationship between foundation reaction and displacement.</p> "> Figure 14
<p>Location relationship between the foundation pit and tunnel (m).</p> "> Figure 15
<p>Three-dimensional numerical model.</p> "> Figure 16
<p>Comparative analysis of tunnel displacement caused by the excavation of the foundation pit.</p> "> Figure 17
<p>Vertical displacement of the tunnel structure caused by the excavation of the foundation pit.</p> ">
Abstract
:1. Introduction
2. Two-Stage Analysis Method
3. Additional Stress Calculation of the First Stage
3.1. Base and Foundation Pit Side Wall Unloading
3.2. Considering the Influence of the Enclosure Structure
3.3. Considering the Precipitation Effect
3.4. Considering the Double-Hole Effect
3.5. Considering the Residual Stress of Soil and Soil Nonlinearity
4. The Second Stage of the Tunnel Displacement and Internal Force Calculation
4.1. Considering the Shear Action
4.2. Considering the Effect of Lateral Soil
4.3. Considering the Buried Depth Effect of the Tunnel
4.4. Considering the Non-Uniformity of Soil
4.5. Considering the Effect of the Segment Joint and the Constraint Effect of the Tunnel End
4.6. Considering the Nonlinearity of the Segment Joint and Foundation
5. Engineering Case Verification
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Name of Stratum or Structure | Thickness or Diameter h/r (m) | Volumetric Weight γ (kN/m3) | Elastic Modulus E (MPa) | Poisson Ratio ν | Cohesion c (kPa) | Angle of Internal Friction φ (°) |
---|---|---|---|---|---|---|
Stratum | 60.00 | 18.50 | 20.00 | 0.30 | 35.00 | 15.00 |
Tunnel structure | outside diameter 6.70 inside diameter 5.30 | 24.00 | 32,500.00 | 0.25 | — | — |
Diaphragm wall | 0.80 | 26.30 | 31,500.00 | 0.20 | — | — |
Steel support | outside diameter 0.61 inside diameter 0.58 | 78.50 | 210,000.00 | 0.30 | — | — |
Parameters | Definition | Parameters | Definition |
---|---|---|---|
The additional stress on the tunnel caused by the unloading of the soil at the bottom of the foundation pit after excavation | h1 | Water level before precipitation | |
Additional stress on the tunnel caused by unloading the soil on one side of the pit wall after excavation of the foundation pit | h2 | Water level after precipitation | |
The total additional stress on the tunnel caused by the unloading of the soil at the bottom and walls of the foundation pit after excavation | γw | Volume weight of water | |
x1 | The horizontal coordinate of a point on the tunnel axis | i | Water surface slope or gradient |
L0 | The horizontal distance between the center of the foundation pit and the center of the tunnel | Additional effective stress in soil caused by precipitation | |
z0 | Depth of tunnel | b | Contact pressure between tunnel b and soil |
(ξ, η) | A point in the uniformly distributed rectangular load at the bottom of the pit | Lm | Integration range along the b-axis of the tunnel |
(η, τ) | A point in the triangular distribution load on the sidewall | α | Residual unloading stress coefficient |
γ | Volume weight of soil | h | When calculating residual stress, calculate the thickness of the soil above the point |
K0 | Coefficient of lateral pressure | q(x) | Distributed loads on tunnels |
Ω | Integral region on the bottom area of the pit | w(x) | The deflection of the tunnel |
Γ | Integral region on the sidewall area | k, c | The foundation bed coefficient |
ν | Poisson’s ratio of soil | G, 2t | Shear stiffness of tunnels |
R1 | D | The outer diameter of the tunnel | |
R2 | EI | Bending stiffness of tunnels | |
T1 | T1, T2 | Lateral soil force on tunnel | |
T2 | δ | Coefficient that can consider the influence of tunnel depth | |
L | The length of the foundation pit | Es | The elastic modulus of soil |
B | The width of the foundation pit | Δhi | The thickness of the i-th layer of soil |
d | The depth of the foundation pit | Kθ | Rotational stiffness |
c | Cohesive of soil | qu | Ultimate foundation reaction force |
φ | Angle of internal friction of soil | ku | The ratio of the ultimate foundation reaction qu to the required deformation of the foundation soil |
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Mao, H.; Hu, Z.; Wang, W.; Liu, Z.; Yang, H.; Li, B.; Wang, Y. Two-Stage Analysis Method for the Mechanical Response of Adjacent Existing Tunnels Caused by Foundation Pit Excavation. Buildings 2024, 14, 2246. https://doi.org/10.3390/buildings14072246
Mao H, Hu Z, Wang W, Liu Z, Yang H, Li B, Wang Y. Two-Stage Analysis Method for the Mechanical Response of Adjacent Existing Tunnels Caused by Foundation Pit Excavation. Buildings. 2024; 14(7):2246. https://doi.org/10.3390/buildings14072246
Chicago/Turabian StyleMao, Hongtao, Zhinan Hu, Wenzheng Wang, Zhichun Liu, Huijun Yang, Biao Li, and Yonggang Wang. 2024. "Two-Stage Analysis Method for the Mechanical Response of Adjacent Existing Tunnels Caused by Foundation Pit Excavation" Buildings 14, no. 7: 2246. https://doi.org/10.3390/buildings14072246
APA StyleMao, H., Hu, Z., Wang, W., Liu, Z., Yang, H., Li, B., & Wang, Y. (2024). Two-Stage Analysis Method for the Mechanical Response of Adjacent Existing Tunnels Caused by Foundation Pit Excavation. Buildings, 14(7), 2246. https://doi.org/10.3390/buildings14072246