Dynamic Characteristics of Reconstituted Silt Influenced by Axial Unloading Intensity and Fine Particle Content
Abstract
:1. Introduction
2. Test Program
2.1. Soil
2.2. Parameters of the Cyclic Loading
- Wave form and frequency of the cyclic loading
- 2.
- Amplitude of the cyclic loading
- 3.
- The number of cycles and the failure criterion
2.3. Unloading and Reloading Stress Paths
2.4. Test Procedures
- Sample preparation
- 2.
- Saturation
- 3.
- Consolidation
- 4.
- Unloading and reloading
- 5.
- Cyclic loading
3. Dynamic Response of the Silt Containing Fine Particles under Conventional Triaxial Stress Path
3.1. Undrained Cyclic Tests
3.2. Drained Cyclic Tests
4. Dynamic Response of the Silt Containing Fine Particles under Unloading Stress Paths
4.1. Pemanent Axial Strain under Different Unloading Intensities
4.2. Excess Pore Water Pressure under Different Unloading Intensities
5. Conclusions
- In cyclic loading tests, there is a dynamic stress amplitude threshold. The permanent axial strain and excess pore water pressure of the silt tend to be stable as the number of cycles increases when the dynamic stress amplitude is less than this value. When the dynamic stress amplitude exceeds this value, the silt will liquefy and fail as the number of cycles increases. With increasing fine particle content, the threshold dynamic stress and failure cycles in silt decrease and then increase, reaching a minimum of 39 kPa and 5495, respectively, at 10% fine particle content.
- For the same fine particle content, the permanent axial strain under drained conditions is greater than that under undrained conditions (when the sample does not fail at 10,000 cycles) because the excess pore pressure under drained conditions is dissipated in time, resulting in the consolidation deformation of soil samples. At the same time, due to higher permeability and lower fine particles of silt, the difference between undrained and drained permanent axial strain is more significant.
- The threshold dynamic stress amplitude and failure cycles of the silt are significantly reduced by axial unloading. The silt is disturbed during the unloading and reloading path, resulting in a slight reduction in the critical dynamic stress amplitude and failure period. The dynamic stress threshold amplitude of a soil sample decreases slightly as unloading strength increases. As a result, the impact of fine particle content and foundation pit unloading on the dynamic characteristics of silt under long-term cyclic loading should be considered.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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w/% | ρd/g/cm3 | ρ/g/cm3 | Gs | e | wL/% | wP/% | IP |
---|---|---|---|---|---|---|---|
28.91 | 1.49 | 1.94 | 2.69 | 0.79 | 31.3 | 24.70 | 6.74 |
Particle Size | Silt | Kaolin Clay |
---|---|---|
Fine sand (0.25–0.075 mm) (%) | 2.48 | 0 |
Silt (0.075–0.005 mm) (%) | 90.54 | 49.80 |
Clay (<0.005 mm) (%) | 6.98 | 50.20 |
Number | Fine Particle Content/% | Effective Axial Stress Paths/kPa | Drainage Conditions (Cyclic Tests) |
---|---|---|---|
AU/AD-1 | 7 | 100 | Undrained/Drained |
AU/AD-1 | 8 | 100 | Undrained/Drained |
AU/AD-1 | 10 | 100 | Undrained/Drained |
AU/AD-1 | 12 | 100 | Undrained/Drained |
AU/AD-1 | 14 | 100 | Undrained/Drained |
BU-1 | 8 | 100→90→80→70→60 | Undrained |
BU-2 | 8 | 100→80→60 | Undrained |
BU-3 | 8 | 100→60 | Undrained |
CU-1 | 8 | 100→90→80→70→60→100 | Undrained |
CU-2 | 8 | 100→80→60→100 | Undrained |
CU-3 | 8 | 100→60→100 | Undrained |
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Meng, F.; Xia, C.; Zhu, M.; Tong, Z.; Lu, C. Dynamic Characteristics of Reconstituted Silt Influenced by Axial Unloading Intensity and Fine Particle Content. Appl. Sci. 2022, 12, 7222. https://doi.org/10.3390/app12147222
Meng F, Xia C, Zhu M, Tong Z, Lu C. Dynamic Characteristics of Reconstituted Silt Influenced by Axial Unloading Intensity and Fine Particle Content. Applied Sciences. 2022; 12(14):7222. https://doi.org/10.3390/app12147222
Chicago/Turabian StyleMeng, Fanli, Changqing Xia, Min Zhu, Zhijun Tong, and Chengyuan Lu. 2022. "Dynamic Characteristics of Reconstituted Silt Influenced by Axial Unloading Intensity and Fine Particle Content" Applied Sciences 12, no. 14: 7222. https://doi.org/10.3390/app12147222
APA StyleMeng, F., Xia, C., Zhu, M., Tong, Z., & Lu, C. (2022). Dynamic Characteristics of Reconstituted Silt Influenced by Axial Unloading Intensity and Fine Particle Content. Applied Sciences, 12(14), 7222. https://doi.org/10.3390/app12147222