Study on the Dynamic Soil-Pile-Structure Interactive Behavior in Liquefiable Sand by 3D Numerical Simulation
Abstract
:1. Introduction
2. Modeling Methodology
2.1. Approaches to Capture Soil Behavior during Liquefaction
2.1.1. Total Stress Analysis
2.1.2. Effective Stress Analysis
2.2. Soil Liquefaction Model
2.3. Soil Dynamic Damping and Nonlinear Model
2.4. Soil–Pile Foundation Interface Model
2.5. Boundary Conditions
2.6. Numerical Modeling
3. Verification of Proposed Model
3.1. Centrifuge Tests and Input Properties
3.2. Comparison of Dynamic Responses
4. Parametric Study
4.1. Effect of Thickness of Liquefiable Soil Layer
4.2. Effect of Relative Density of Liquefiable Soil
4.3. Effect of Superstructure Weight
5. Concluding Remark
- (1)
- The proposed methodology includes the liquefaction model, which can simulate pore pressure generation and soil strength reduction under strong earthquake in real time. Simplified continuum modeling was adopted firstly for liquefaction related soil-pile-structure system to accurately simulate boundary condition and to improve analysis efficiency. Damping and interface models were proposed to properly consider soil nonlinearity, and various dynamic soil properties such as initial shear modulus, interface friction angle, etc. were carefully determined.
- (2)
- Based on the verification, it was confirmed that time histories of the excess pore pressure ratio, pile bending moment, and pile head lateral displacement by depth derived using the proposed modeling method effectively simulated those observed in centrifuge test.
- (3)
- In a parametric study, the bending moment reached its maximum at the interface between the liquefied and non-liquefied layers, and the lateral pile displacement remarkably decreased as the thickness of liquefiable layer was decreased. As the liquefiable layer became denser, the liquefied depth became shallower and dynamic pile responses significantly decreased. The kinematic force induced by soil deformation was dominant in liquefiable sand, whereas the inertial force induced by superstructure was relatively insignificant. These kinds of important dynamic characteristics for different soil conditions were clarified by full-scale numerical simulation.
- (4)
- Based on the results from a series of parametric studies using the proposed numerical model, several recommendations can be drawn in design stage of pile foundation. Additional careful consideration should be made when constructing piles in multi-layered ground condition because unexpected unusual sharp increase of dynamic response can be occurred at the interface between soil layers. Even under similarly liquefied conditions, significant differences in the dynamic responses of pile can occur due to differences in ground relative density because kinematic force is dominant in liquefied condition. Therefore, when the liquefiable layer is distributed to a deep depth, a more rational design is possible if an effective soil improvement method such as dynamic compaction is used in combination with a pile, rather than massive reinforcement or the addition of a pile.
Author Contributions
Acknowledgments
Conflicts of Interest
References
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Property | Dr = 35% | Dr = 55% | Dr = 80% |
---|---|---|---|
Porosity | 0.438 | 0.409 | 0.377 |
Saturated unit weight (kN/m3) | 19.38 | 19.87 | 20.41 |
Friction angle (°) | 32 | 34 | 36 |
Poisson’s ratio | 0.32 | 0.31 | 0.30 |
Volume change constants | C1 = 1.05, C2 = 0.38 | C1 = 0.34, C2 = 1.17 | C1 = 0.13, C2 = 3.07 |
Young’s Modulus (MPa) | 70 |
---|---|
Outside diameter (m) | 0.667 |
Wall thickness (m) | 0.0724 |
Moment of inertia (m4) | 0.0061 |
Parameters | Parametric Study |
---|---|
Thickness of upper liquefiable layer | 3 m, 6 m, 9 m |
Dr of liquefiable soil | 30 %, 50 % |
Superstructure weight | 0, 300 kN, 600 kN, 900 kN |
Property | Dr = 30% | Dr = 50% |
---|---|---|
Porosity | 0.445 | 0.415 |
Saturated unit weight (kN/m3) | 19.27 | 19.75 |
Friction angle (°) | 32 | 34 |
Poisson’s ratio | 0.32 | 0.31 |
Volume change constants | C1 = 1.54, C2 = 0.26 | C1 = 0.43, C2 = 0.93 |
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Kwon, S.Y.; Yoo, M. Study on the Dynamic Soil-Pile-Structure Interactive Behavior in Liquefiable Sand by 3D Numerical Simulation. Appl. Sci. 2020, 10, 2723. https://doi.org/10.3390/app10082723
Kwon SY, Yoo M. Study on the Dynamic Soil-Pile-Structure Interactive Behavior in Liquefiable Sand by 3D Numerical Simulation. Applied Sciences. 2020; 10(8):2723. https://doi.org/10.3390/app10082723
Chicago/Turabian StyleKwon, Sun Yong, and Mintaek Yoo. 2020. "Study on the Dynamic Soil-Pile-Structure Interactive Behavior in Liquefiable Sand by 3D Numerical Simulation" Applied Sciences 10, no. 8: 2723. https://doi.org/10.3390/app10082723
APA StyleKwon, S. Y., & Yoo, M. (2020). Study on the Dynamic Soil-Pile-Structure Interactive Behavior in Liquefiable Sand by 3D Numerical Simulation. Applied Sciences, 10(8), 2723. https://doi.org/10.3390/app10082723