Numerical Analysis of Bearing Capacity of a Ring Footing on Geogrid Reinforced Sand
Abstract
:1. Introduction
2. Numerical Modeling of Geogrid Reinforced Sand under a Ring-Footing
3. Factors Affecting the Bearing Capacity of Ring Footing on Sandy Sand
3.1. Effect of Ring Footing’s Diameter Ratio (n = Di/D)
3.2. Intersection under Ring Footing: “Two Adjacent Footings”
3.3. An Optimum Depth u to Set Geogrid Reinforcement
3.4. The Vertical Spacing between the Geogrid Layers
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
BCR | Bearing capacity ratio, qu/qur |
C | Soil cohesion (kPa) |
d | Effective depth of reinforcement (mm) |
Internal diameter of the ring footing (mm) | |
D | External diameter of the ring footing (mm) |
Df | Depth of footing base below the ground surface (mm) |
u | Vertical distance between the first reinforcement layer and footing base (mm). |
h | Vertical distance between reinforcement layers (mm) |
N | Number of reinforcement layers |
The ultimate bearing capacity with reinforcement (kPa) | |
The ultimate bearing capacity without reinforcement (kPa) | |
K | Bulk modulus (kPa) |
G | Shear modulus (kPa) |
Friction angle (degrees) | |
Dilation angle (degrees) | |
E | Elasticity modulus (kPa) |
ν | Poisson ratio |
Kn | Normal stiffness (kN/m) |
Ks | Shear stiffness (kN/m) |
n | Ring footings’ inner/outer diameter ratio (Di/D) |
S | Settlement (mm) |
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Soil Parameters | |
---|---|
Bulk Modulus (K) | |
Modulus of Elasticity (E) | |
Shear Modulus (G) | |
Poisson’s Ratio | 0.3 |
Cohesion (C) | |
38° | |
8° | |
Relative Density | 50% |
Elasticity Modulus (E) | |
28° | |
Cohesion | 0 kPa |
Normal and Shear Stiffness (Kn and Ks) |
Number of Geogrid Reinforcement Layers N | (u/D) Opt |
---|---|
1 | 0.36–0.44 |
2 | 0.34–0.41 |
3 | 0.266 |
4 | 0.2 |
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Hosamo, H.; Sliteen, I.; Ding, S. Numerical Analysis of Bearing Capacity of a Ring Footing on Geogrid Reinforced Sand. Buildings 2021, 11, 68. https://doi.org/10.3390/buildings11020068
Hosamo H, Sliteen I, Ding S. Numerical Analysis of Bearing Capacity of a Ring Footing on Geogrid Reinforced Sand. Buildings. 2021; 11(2):68. https://doi.org/10.3390/buildings11020068
Chicago/Turabian StyleHosamo, Haidar, Iyad Sliteen, and Songxiong Ding. 2021. "Numerical Analysis of Bearing Capacity of a Ring Footing on Geogrid Reinforced Sand" Buildings 11, no. 2: 68. https://doi.org/10.3390/buildings11020068
APA StyleHosamo, H., Sliteen, I., & Ding, S. (2021). Numerical Analysis of Bearing Capacity of a Ring Footing on Geogrid Reinforced Sand. Buildings, 11(2), 68. https://doi.org/10.3390/buildings11020068