Numerical Analysis of Dynamic Response and Liquefaction Phenomena in Sandy Seabed Foundation around a Semi-Circular Breakwater under Wave Loading
Abstract
:1. Introduction
2. Numerical Model
2.1. Flow Model
2.2. Seabed Model
2.3. Model Coupling and Boundary Conditions
3. Model Validation
3.1. Mesh Convergence Verification
3.2. Model Validation with Wave Flume Test
4. Results and Discussion
4.1. Parameter Setting
4.2. Effect of Wave Characteristics
4.3. Sea Bed Characteristics
4.4. Geometrical Characteristics of the Semi-Circular Breakwater
4.5. Liquefaction Depth
5. Conclusions
- The model established in this study can effectively be applied to the study of the oscillatory response in the seabed surrounding a semicircular breakwater. The fluid model accurately simulates wave generation, propagation, and the reflection and superposition phenomena in front of the breakwater. The seabed model captures the oscillatory response of the seabed foundation under dynamic wave loading;
- The dynamic response of the seabed is influenced by wave characteristics, seabed properties, and the geometric features of the semicircular breakwater. The dynamic response of seabed soil is intensified by increasing wave height, wave period, and permeability coefficient, whereas the dynamic response is weakened by increasing water depth. There is a negative correlation between the radius of the semicircular breakwater and the dynamic response of the seabed, while the influence of the Poisson’s ratio is relatively small;
- Under wave loading, the maximum pore water pressure in the seabed decreases with increasing seabed depth. The attenuation rate of the maximum pore water pressure shows a sudden change in shallow seabed areas, with the peak value occurring within this region. The maximum effective stress in the seabed shows an increasing trend followed by a decrease as the seabed depth increases, with the peak value occurring in the shallow seabed region;
- The presence of the semicircular breakwater causes changes in the distribution of the pore water pressure near its foundation, with the most intense dynamic response observed at the interface between the breakwater and the rubble foundation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value | Unit | |
---|---|---|---|
Wave parameters | Wave Height (H) | 0.03 | m |
Period (T) | 1.4 | s | |
Water Depth (d) | 0.21 | m | |
Seabed Parameters | Seabed Thickness (h) | 0.2 | m |
Saturation (Sr) | 0.99 | ||
Shear Modulus (G) | 1.0 × 108 | N/m2 | |
Poisson’s Ratio (ν) | 0.33 | ||
Porosity (φ) | 0.3 | ||
d50 | 0.001 | m | |
Hydraulic Conductivity (ks) | 2.2 × 10−3 | m/s | |
Breakwater | Saturation (Sr) | 0.99 | |
Shear Modulus (G) | 1.0 × 109 | N/m2 | |
Poisson’s Ratio (ν) | 0.24 | ||
Porosity (φ) | 0.33 | ||
d50 | 0.03 | m | |
Hydraulic Conductivity (ks) | 1.8 × 10−7 | m/s | |
Armor Slope | 1:2 |
Parameter | Value | Unit | |
---|---|---|---|
Wave parameters | Wave Height (H) | 1.25 | m |
Period (T) | 8 | s | |
Water Depth (d) | 7.5 | m | |
Seabed Parameters | Seabed Thickness (h) | 20 | m |
Saturation (Sr) | 0.98 | ||
Shear Modulus (G) | 1.0 × 107 | N/m2 | |
Poisson’s Ratio (ν) | 0.33 | ||
Porosity (φ) | 0.425 | ||
Hydraulic Conductivity (ks) | 1 × 10−3 | m/s | |
Rubble Bed | Elastic Modulus (E) | 1.2 × 108 | N/m2 |
Hydraulic Conductivity (ks) | 0.005 | m/s | |
Porosity (φ) | 0.333 | ||
Density (ρ) | 2200 | Kg/m3 | |
Poisson’s Ratio (ν) | 0.25 | ||
Breakwater | Elastic Modulus (E) | 5.5 × 108 | N/m2 |
Hydraulic Conductivity (ks) | 0 | m/s | |
Porosity (φ) | 0 | ||
Density (ρ) | 2500 | Kg/m3 | |
Poisson’s Ratio (ν) | 0.25 |
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Liu, J.; Jia, Y.; Cui, L.; Sun, H.; Lv, X.; Asheghabadi, M.S. Numerical Analysis of Dynamic Response and Liquefaction Phenomena in Sandy Seabed Foundation around a Semi-Circular Breakwater under Wave Loading. J. Mar. Sci. Eng. 2024, 12, 40. https://doi.org/10.3390/jmse12010040
Liu J, Jia Y, Cui L, Sun H, Lv X, Asheghabadi MS. Numerical Analysis of Dynamic Response and Liquefaction Phenomena in Sandy Seabed Foundation around a Semi-Circular Breakwater under Wave Loading. Journal of Marine Science and Engineering. 2024; 12(1):40. https://doi.org/10.3390/jmse12010040
Chicago/Turabian StyleLiu, Junwei, Yunping Jia, Lin Cui, Honglei Sun, Xu Lv, and Mohsen Saleh Asheghabadi. 2024. "Numerical Analysis of Dynamic Response and Liquefaction Phenomena in Sandy Seabed Foundation around a Semi-Circular Breakwater under Wave Loading" Journal of Marine Science and Engineering 12, no. 1: 40. https://doi.org/10.3390/jmse12010040
APA StyleLiu, J., Jia, Y., Cui, L., Sun, H., Lv, X., & Asheghabadi, M. S. (2024). Numerical Analysis of Dynamic Response and Liquefaction Phenomena in Sandy Seabed Foundation around a Semi-Circular Breakwater under Wave Loading. Journal of Marine Science and Engineering, 12(1), 40. https://doi.org/10.3390/jmse12010040