Behavior of Stiffened Rafts Resting on Expansive Soil and Subjected to Column Loads of Lightweight-Reinforced Concrete Structures
Abstract
:1. Introduction
2. Analysis Method
2.1. Limitations in Existing Design Methods
2.2. Computer Program SLAB97
Validation of the Program SLAB97
3. Parametric Study
4. Analysis of Results
4.1. Effect of the Stiffening Beam Depth
4.2. Effect of the Differential Movement of Mound Shape
4.3. Effect of Raft Dimensions
5. Conclusions
- The stiffened rafts subjected to concentrated columns’ loads exhibit a similar shape of raft deformation and distribution of bending moments to those of the stiffened rafts subjected to uniform and perimeter line loads in both cases of distortion modes; however, the values of the design parameters (i.e., maximum deflection, maximum differential deflection, and maximum bending moments) are completely different.
- For the case of EH distortion mode, two conditions of soil support were observed; these are simply-support condition and multiple-supports condition (i.e., support at the raft perimeter and support at the raft core area), depending on the stiffness of the raft.
- The maximum bending moments in long and short directions, in both distortion modes, occur near the raft edge, and the distance from the raft edge to the locations of maximum moments depends on the stiffening beam depth, the maximum differential movement, and the aspect ratio of the raft.
- The greatest amount of differential deflection was found to occur at the corner of the raft, and its value is dependent on the stiffening beam depth, the maximum differential movement, and the raft dimensions.
- The stiffened raft components should be designed to withstand both negative moments and positive moments arising from both two distortion modes of ES and EH, respectively.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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(m) |
(kPa) |
(kPa) |
|
|
| ||
---|---|---|---|---|---|---|---|
5.0 | 4.0 (1000) | 2.0 (10) | 0.02 | 0.00144 0.00432 0.0104 0.0200 0.0360 | 8 × 8 12 × 16 16 × 28 20 × 40 | 1.00 1.33 1.75 2.00 | 0.30 0.60 0.90 1.20 1.50 |
Site Classes According to AS2870-2011 [44] | ||||||
---|---|---|---|---|---|---|
Class | Site classification | ) | ) | |||
S | Slightly reactive | 20.14 | 20.52 | 20.52 | 20.52 | |
M | Moderately reactive | 31.37 | 32.88 | 32.88 | 32.88 | |
H1 | Highly reactive | 45.60 | 48.52 | 48.52 | 48.51 | |
H2 | Highly reactive | 58.54 | 63.68 | 63.76 | 63.75 | |
E | Extremely reactive | 67.92 | 76.77 | 77.32 | 77.37 |
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Abu-Ali, M.H.; El-Garhy, B.; Boraey, A.; Alrashed, W.S.; El-Shami, M.; Abdel-Daiem, H.; Alrefahi, B. Behavior of Stiffened Rafts Resting on Expansive Soil and Subjected to Column Loads of Lightweight-Reinforced Concrete Structures. Buildings 2024, 14, 588. https://doi.org/10.3390/buildings14030588
Abu-Ali MH, El-Garhy B, Boraey A, Alrashed WS, El-Shami M, Abdel-Daiem H, Alrefahi B. Behavior of Stiffened Rafts Resting on Expansive Soil and Subjected to Column Loads of Lightweight-Reinforced Concrete Structures. Buildings. 2024; 14(3):588. https://doi.org/10.3390/buildings14030588
Chicago/Turabian StyleAbu-Ali, Mohamed H., Basuony El-Garhy, Ahmed Boraey, Wael S. Alrashed, Mostafa El-Shami, Hassan Abdel-Daiem, and Badrelden Alrefahi. 2024. "Behavior of Stiffened Rafts Resting on Expansive Soil and Subjected to Column Loads of Lightweight-Reinforced Concrete Structures" Buildings 14, no. 3: 588. https://doi.org/10.3390/buildings14030588
APA StyleAbu-Ali, M. H., El-Garhy, B., Boraey, A., Alrashed, W. S., El-Shami, M., Abdel-Daiem, H., & Alrefahi, B. (2024). Behavior of Stiffened Rafts Resting on Expansive Soil and Subjected to Column Loads of Lightweight-Reinforced Concrete Structures. Buildings, 14(3), 588. https://doi.org/10.3390/buildings14030588