A One-Dimensional Nonlinear Consolidation Analysis of Double-Layered Soil with Continuous Drainage Boundary
Abstract
:1. Introduction
2. Fundamental Problems
3. Difference Solution
4. Verification and Analysis of Solution
4.1. Verification of Solution
4.2. Consolidation Analyses
5. Conclusions
- When the permeability of the lower soil is higher than that of the upper soil, or the compressibility of the lower soil is lower than that of the upper soil, it is beneficial to the consolidation of the foundation.
- Exchanging interface parameters between the upper and lower soil layers yields limited impact when their compressibility and permeability exhibit similarity. Nevertheless, notable effects emerge when the compression index to penetration index ratio deviates across these layers, leading to substantial variations in soil consolidation rates. Given that layered soil typically displays heterogeneous properties, the interface parameters, i.e., the interface permeability on consolidation and settlement calculations, are of considerable significance and cannot be disregarded in most instances.
- For , both the average degree of consolidation defined by settlement (Us) and pore water pressure (Up) increase with rising Nσ values. Furthermore, the effect of Nσ on (Us) is more pronounced than on (Up) under continuous boundary conditions.
- In cases where , the Us increases with increasing Nσ values under continuous boundary conditions. This contradicts the existing outcome based on the traditional Terzaghi drainage boundary, where changes in Nσ had no effect on the Us consolidation curve. In cases where , Up decreases with increasing Nσ values. The influence of Nσ on Us is multifaceted: during early consolidation, Us increases with rising Nσ, but in the middle and later stages of consolidation, Us decreases with increasing Nσ.
- Unlike the consolidation characteristics under traditional boundary conditions, in the case of continuous drainage boundary conditions, the pore pressure at the boundary interface is no longer consistently maintained at zero. As the interface parameters decrease, the pore pressure at the interface gradually increases, and the rate of pore pressure dissipation progressively decreases. Furthermore, the pore pressure diminishes as both a and b values decrease proportionally, indicating that in foundations where the upper layer exhibits better permeability and the lower layer experiences less compression, the dissipation rate of pore pressure is faster.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Soil Layer | Thickness h (m) | Load P (kPa) | Initial Effective Stress (kPa) | Compression Index Cc | Penetration Index Ck | Initial Permeability Coefficient kv0 (10−9 m·s−1) | Initial Void Ratio e0 | Initial Compression Modulus Es0 (kPa) |
---|---|---|---|---|---|---|---|---|
Upper soil | 5 | 100 | 20 | 0.315 | 0.525 | 0.815 | 1.422 | 354.086 |
Lower soil | 0.528 | 0.880 | 6.15 | 1.622 | 228.689 |
(kPa) | e0 | mv0 (MPa−1) | kv0 (×10−7 cm/s) | cv0 (×10−3 cm2/s) | Nσ | H (cm) |
---|---|---|---|---|---|---|
253–453 | 0.694 | 0.39 | 0.61 | 1.59 | 1.79 | 6.65 |
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Zhang, Y.; Yin, Y.; Zong, M.; Wu, W.; Zong, Z.; Mei, G. A One-Dimensional Nonlinear Consolidation Analysis of Double-Layered Soil with Continuous Drainage Boundary. Appl. Sci. 2023, 13, 11711. https://doi.org/10.3390/app132111711
Zhang Y, Yin Y, Zong M, Wu W, Zong Z, Mei G. A One-Dimensional Nonlinear Consolidation Analysis of Double-Layered Soil with Continuous Drainage Boundary. Applied Sciences. 2023; 13(21):11711. https://doi.org/10.3390/app132111711
Chicago/Turabian StyleZhang, Yi, Yong Yin, Mengfan Zong, Wenbing Wu, Zhongling Zong, and Guoxiong Mei. 2023. "A One-Dimensional Nonlinear Consolidation Analysis of Double-Layered Soil with Continuous Drainage Boundary" Applied Sciences 13, no. 21: 11711. https://doi.org/10.3390/app132111711
APA StyleZhang, Y., Yin, Y., Zong, M., Wu, W., Zong, Z., & Mei, G. (2023). A One-Dimensional Nonlinear Consolidation Analysis of Double-Layered Soil with Continuous Drainage Boundary. Applied Sciences, 13(21), 11711. https://doi.org/10.3390/app132111711