Shear Strength and Ultimate Bearing Capacity of Silt-Based Foamed Concrete Under Local Vertical Loading
Abstract
1. Introduction
2. Experimental Program and Materials
2.1. Materials
2.2. Sample Preparation
2.3. Static Triaxial Test
2.4. Local Loading on Foamed Concrete Foundation
3. Test Results and Discussion
3.1. Triaxial Compression of Silt-Based Foamed Concrete
3.1.1. Stress–Strain Curves
3.1.2. Compression Strength and Strength Ratio
3.1.3. Shear Strength
3.2. Deformation and Bearing Capacity Under Different Loading Conditions
3.2.1. The Effect of the Wet Density
3.2.2. The Effect of Different Loading Points
4. Theoretical Analysis of Bearing Capacity
4.1. Typical Damage Models for Foundation Bearing Capacity
4.2. Theoretical Formulation of Silt-Based Foamed Concrete Ultimate Bearing Capacity
5. Conclusions
- As the wet density increased from 600 kg/m3 to 800 kg/m3, the 28-day compressive strength rose from 1.21 MPa to 2.43 MPa, and the triaxial shear strength under 300 kPa confinement increased from 1.87 MPa to 3.88 MPa. This improvement is mainly attributed to reduced porosity and enhanced particle bonding, which increased the material’s load-bearing capacity and deformation resistance.
- The compression of the pore structure improved the particle contact and the load transfer, leading to a significant increase in the strength ratio under confinement. Notably, although the 800 kg/m3 specimen exhibited higher compressive strength, the 700 kg/m3 group showed a maximum strength ratio of 2.41, exceeding that of the 800 kg/m3 group (1.6), due to its better deformability and confinement response.
- When subjected to vertical loads, silt-based foamed concrete exhibits a basin-shaped deformation pattern similar to that of a foundation, and the higher the density of the silt-based foamed concrete, the stronger its deformation resistance.
- Under non-edge loading conditions, the failure mode is closer to local shear failure; under edge loading conditions, the failure mode of silt-based foamed concrete more closely resembles direct shear failure.
- Based on the results of model tests and building upon Terzaghi’s bearing capacity theory formula, this study developed a calculation formula for the ultimate bearing capacity applicable to silt-based foamed concrete with a 30% content. The formula showed good agreement with measured values, with the relative errors within 3%, confirming the formula’s reliability.
- For engineering applications, a wet density of around 700 kg/m3 is recommended to balance strength and lightweight requirements. Engineers should also consider loading position effects, as edge loading may lead to more severe failure. These findings provide practical guidance for the use of silt-based foamed concrete in shallow foundations and embankments.
- This study investigated the triaxial mechanical behavior, deformation characteristics, and bearing capacity of silt-based foamed concrete under vertical loading. Based on experimental data and Terzaghi’s theory, a calculation formula for ultimate bearing capacity was developed, showing good agreement with measured results (relative errors within 3%). The observed shear failure modes and load–deformation behavior provide insights for shallow foundation design and failure prediction. The proposed formula is applicable to silt-based foamed concrete with a 30% silt content and wet densities of 600–800 kg/m3 under short-term loading. However, its accuracy may be limited under extreme environmental conditions, long-term loads, or outside the tested density range. Future work should investigate durability-related performance and explore microstructural evolution using techniques such as micro-CT and digital imaging.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Specific Surface Area (m2/kg) | Standard Consistency (%) | Setting Time (min) | Compressive Strength (MPa) | Flexural Strength (MPa) | |||
---|---|---|---|---|---|---|---|
Initial | Final | 3 d | 28 d | 3 d | 28 d | ||
35.8 | 28.2 | 192 | 231 | 28.1 | 50.7 | 6.5 | 9.6 |
Foam Expansion Ratio | 1 h Settlement Distance (mm) | 1 h Bleeding Rate (%) | Sedimentation Rate of Slurry (%) | Solid Content (%) | pH | Density (kg/m3) |
---|---|---|---|---|---|---|
24 | 5 | 20 | 2 | 23.4 | 7.2 | 1000 |
Wet Density (kg/m3) | Silt Content (%) | Mixture Composition (per m3) | |||
---|---|---|---|---|---|
Water (kg) | Cement (kg) | Silt (kg) | Foam (kg) | ||
600 | 30 | 157.98 | 287.24 | 123.10 | 31.678 |
700 | 186.70 | 339.46 | 145.48 | 28.347 | |
800 | 215.43 | 391.69 | 167.87 | 25.016 |
Wet Density (kg/m3) | (kPa) | (kPa) | (kPa) | Shear Strength Index | |
---|---|---|---|---|---|
c (kPa) | (°) | ||||
600 | 1350 | 100 | 1250 | 198.6 | 43.2 |
1600 | 200 | 1400 | |||
1870 | 300 | 1570 | |||
700 | 2090 | 100 | 1990 | 347.6 | 50.7 |
2810 | 200 | 2610 | |||
3540 | 300 | 3240 | |||
800 | 2510 | 100 | 2410 | 413.7 | 56.9 |
3490 | 200 | 3290 | |||
3880 | 300 | 3580 |
Parameter | Density (kg/m3) | |||
---|---|---|---|---|
600 | 700 | 800 | ||
Internal cohesion c (kPa) | 199 | 348 | 417 | |
Internal friction angle (°) | 43.2 | 50.7 | 56.9 | |
Unit weight (kN/m3) | 5.89 | 6.87 | 7.85 | |
Foundation bearing capacity factor | 72.45 | 45.14 | 27.11 | |
69.04 | 56.15 | 42.59 | ||
115.0 | 121.28 | 114.84 | ||
Measured ultimate bearing capacity (kPa) | 1120 | 1580 | 2040 |
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Ma, C.; Wang, J.; Zhang, N.; Wang, C.; Zhang, S.; Tao, Y.; Lou, S.; Sun, Q.; Ren, X.; Zhang, H. Shear Strength and Ultimate Bearing Capacity of Silt-Based Foamed Concrete Under Local Vertical Loading. Buildings 2025, 15, 1914. https://doi.org/10.3390/buildings15111914
Ma C, Wang J, Zhang N, Wang C, Zhang S, Tao Y, Lou S, Sun Q, Ren X, Zhang H. Shear Strength and Ultimate Bearing Capacity of Silt-Based Foamed Concrete Under Local Vertical Loading. Buildings. 2025; 15(11):1914. https://doi.org/10.3390/buildings15111914
Chicago/Turabian StyleMa, Chuanyi, Jun Wang, Ning Zhang, Chuyi Wang, Shengtao Zhang, Yuchen Tao, Shurong Lou, Qingshuo Sun, Xianfu Ren, and Hongbo Zhang. 2025. "Shear Strength and Ultimate Bearing Capacity of Silt-Based Foamed Concrete Under Local Vertical Loading" Buildings 15, no. 11: 1914. https://doi.org/10.3390/buildings15111914
APA StyleMa, C., Wang, J., Zhang, N., Wang, C., Zhang, S., Tao, Y., Lou, S., Sun, Q., Ren, X., & Zhang, H. (2025). Shear Strength and Ultimate Bearing Capacity of Silt-Based Foamed Concrete Under Local Vertical Loading. Buildings, 15(11), 1914. https://doi.org/10.3390/buildings15111914