Improved Double-Layer Soil Consolidation Theory and Its Application in Marine Soft Soil Engineering
Abstract
:1. Introduction
2. Improved Double-Layer Soil Consolidation Theory Considering Continuous Drainage Boundary Conditions
- (1)
- The soil layer is homogeneous and fully saturated.
- (2)
- Soil particles and water are incompressible.
- (3)
- Water seepage and compression of the soil layer occur only in one direction (vertical).
- (4)
- The seepage of water obeys Darcy’s law.
- (5)
- In the osmotic consolidation, the permeability coefficient and the compression coefficient of the soil are constants.
- (6)
- The external load is applied at two levels of average speed.
- (7)
- Additional stress of soil does not decrease with depth under the large area load of highway roadbed.
3. Improved Double-Layer Consolidation Theory Model Verification Analysis
3.1. Degradation Analysis of Perfectly Permeable Boundary Conditions by the Improved Model
3.2. Degradation Analysis of Semi-Permeable Boundary Conditions by the Improved Model
4. Engineering Case Analysis
4.1. Project Overview
4.2. Settlement and Consolidation Analysis
5. Conclusions
- (1)
- Considering the complex drainage boundary conditions, combining the continuous drainage boundary conditions theory, the improved double-layer soil consolidation theory is derived by using the Laplace transform and Stehfest algorithm with high computational efficiency.
- (2)
- Based on the improved double-layer soil consolidation theory, the perfectly permeable boundary case and the semi-permeable boundary case are used to verify this theory. The calculation results are basically consistent with Xie’s solution, and it is concluded that the improved double-layer soil consolidation model proposed in the present paper had higher accuracy.
- (3)
- The improved double-layer soil consolidation theory is used in an actual engineering case of marine soft soil in Guangxi. Compared with the measured data, the error of calculated data is 0.7–2.3%. The calculated results are basically consistent with the measured results, indicating that this theory is suitable for the analysis of consolidation and settlement of marine soft soil foundation with complex drainage conditions.
- (4)
- It is difficult to quantitatively control the drainage parameters of the improved double-layer soil consolidation theory, which requires a large number of practical cases to determine the parameters. Only the double-layer foundation has been studied here, and soft foundation with more layers needs further study.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
Symbol | Description | Units |
The undetermined constant in Equation (17) | [-] | |
The undetermined constant in Equation (18) | [-] | |
Related to the drainage property of topsoil | [-] | |
c | Related to the drainage property of subsoil | [-] |
Consolidation coefficients of the first/second layer | [m2/s] | |
Compression modulus of the first/second layer | [Pa] | |
Laplace function of , | - | |
Time domain function of | - | |
An approximation of the inverse Laplace transform of | - | |
Thickness of the first/second layer | [m] | |
i | The process variable of accumulation equation | - |
k | The process variable of accumulation equation | - |
Permeability coefficients of the first/second layer | [m/s] | |
Positive even number | [-] | |
Arbitrary loading function | [Pa] | |
Load increments at the first/second levels | [Pa] | |
Total consolidation settlement at time of foundation | [m] | |
Final total consolidation settlement of foundation | [m] | |
Intermediate variable, no real meaning | [/m] | |
Complex variable involved in the Laplace transform | [/s] | |
Time | [s] | |
Loading time of first class load | [s] | |
Starting time of the second stage load | [s] | |
Completion time of the second stage load | [s] | |
Excess pore water pressure | [Pa] | |
Average degree of consolidation of foundation | [-] | |
Excess pore water pressure of the first/second layer | [Pa] | |
Derivative of with respect to | - | |
Dependent on N only | [-] | |
Foundation depth, from the ground up | [m] | |
Water unit weight, take 104 N/m3 | [N/m3] | |
Effective stress of the first/second layer | [Pa] | |
Effective stress at any point in the foundation at any time | [Pa] |
Appendix A
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Value | 0 | (0, +∞) | +∞ | |
---|---|---|---|---|
Parameter | ||||
b | impermeable | semi-permeable | perfectly permeable | |
c | impermeable | semi-permeable | perfectly permeable |
Layer | Layer Thickness h (m) | Permeability Coefficient k (10−8m/s) | Compression Modulus Es (MPa) |
---|---|---|---|
Topsoil | 1 | 1.014 | 8 |
Subsoil | 9 | 2.028 | 4 |
Layer | Layer Thickness h (m) | Permeability Coefficient k (10−9 m/s) | Compression Modulus Es (MPa) |
---|---|---|---|
Topsoil | 3 | 1 | 8 |
Subsoil | 3 | 5 | 1.6 |
Layer | Layer Thickness (m) | Bulk Unit Weight (kN/m3) | Water Content (%) | Liquid Limit (%) | Cohesion (kPa) | Friction Angle (°) | Compression Modulus (MPa) | Permeability Coefficient (10−8m/s) | SPT |
---|---|---|---|---|---|---|---|---|---|
Crust layer | 3 | 18.8 | 20.6 | 35.7 | 25.2 | 18.7 | 15 | 3.8 | 7 |
Soft soil layer | 7 | 16.7 | 45.2 | 36.7 | 4.5 | 8.6 | 7.0 | 3.0 | 6 |
Filling in granite | - | 26 | - | - | 150 | 45 | 1200 | 5 × 104 | >50 |
Data Source | Final Settlement (mm) | Settlement (mm) After 205 Days | Consolidation Degree (%) After 205 Days |
---|---|---|---|
Measured data | 80.0 | 45.2 | 56.5 |
Calculated data (after the replacement) | 78.7 | 45.5 | 57.8 |
Calculated data (before the replacement) | 147.6 | 67.0 | 45.4 |
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Chen, D.; Luo, J.; Liu, X.; Mi, D.; Xu, L. Improved Double-Layer Soil Consolidation Theory and Its Application in Marine Soft Soil Engineering. J. Mar. Sci. Eng. 2019, 7, 156. https://doi.org/10.3390/jmse7050156
Chen D, Luo J, Liu X, Mi D, Xu L. Improved Double-Layer Soil Consolidation Theory and Its Application in Marine Soft Soil Engineering. Journal of Marine Science and Engineering. 2019; 7(5):156. https://doi.org/10.3390/jmse7050156
Chicago/Turabian StyleChen, Deqiang, Junhui Luo, Xianlin Liu, Decai Mi, and Longwang Xu. 2019. "Improved Double-Layer Soil Consolidation Theory and Its Application in Marine Soft Soil Engineering" Journal of Marine Science and Engineering 7, no. 5: 156. https://doi.org/10.3390/jmse7050156
APA StyleChen, D., Luo, J., Liu, X., Mi, D., & Xu, L. (2019). Improved Double-Layer Soil Consolidation Theory and Its Application in Marine Soft Soil Engineering. Journal of Marine Science and Engineering, 7(5), 156. https://doi.org/10.3390/jmse7050156