Strength, Durability, and Microstructure of Foamed Concrete Prepared Using Special Soil and Slag
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Mixture Proportions
2.3. Foamed Concrete Sample Preparation
2.4. Test Methods
2.4.1. Fluidity and Dry Density
2.4.2. Compressive Strength
2.4.3. Water Absorption
2.4.4. Dry–Wet Cycling Test
- I.
- Firstly, the FC was put into the oven at a temperature of 60 ± 5 °C for 48 h after 28 days of maintenance.
- II.
- Then, the FC was taken out and cooled for 30 min. After the FC was cooled to room temperature, it was put into the constant temperature water tank at a temperature of 20 ± 5 °C for 24 h, and the above was used as a set of dry–wet cycles.
- III.
- Subsequently, the FC was removed from the water tank and left to stand for 1 h for compressive strength test.
- IV.
- Finally, the water stability coefficient was calculated as the ratio between compressive strength after five dry–wet cycles and the 28 days compressive strength, as shown in Equation (2).
2.4.5. Drying Shrinkage
2.4.6. Hydration Mechanism
2.4.7. SEM Analysis
3. Results and Discussions
3.1. Fluidity and Dry Density
3.1.1. Fluidity
3.1.2. Dry Density
3.2. Compressive Strength
3.3. Water Absorption
3.4. Dry–Wet Cycling Results
3.5. Drying Shrinkage
3.6. Hydration Mechanism
3.7. Pore Structure
4. Conclusions
- (1)
- When the content of SS was 25% and the content of SP was 35%, 45% and 55%, the flowability of SSFC prepared from three SS was between 160 mm and 180 mm, the dry density was between 640 kg/m3 and 704 kg/m3, the water absorption was between 34% and 49%, and the water stability coefficient was higher than 0.7, demonstrating a good durability of SSFC.
- (2)
- The density grade of general foamed concrete is 300 kg/m3–1200 kg/m3. The dry density of the SSFC prepared in this study was about 650 kg/m3. Although SSFC had a low density, the compressive strength of SSFC was between 1.54 MPa and 3.18 MPa, which sufficiently support its application as subgrade in road engineering.
- (3)
- The rapid growth period of drying shrinkage of SSFC occurred mainly in the first 10 days and gradually stabilized within one month. The drying shrinkage reached the maximum value when the SP content was 45%. The drying shrinkage values of SSFC prepared from silt were higher than those of SSFC prepared from laterite and loess. Compared with laterite, drying shrinkage of SSFC prepared with loess can be stabilized in a shorter time. SSFC prepared with loess has better resistance to drying shrinkage.
- (4)
- The average diameter of pores in SSFC increased with the increase in SP content. In addition, the higher the SP content, the larger the SSFC porosity, and with the increase in porosity, the compressive strength of SSFC decreased and the water absorption rate increased.
- (5)
- When the content of SS is 25% and the content of SP is 35%, the compressive strength, pore structure and durability of SSFC prepared by three kinds of SS meet the requirements of engineering application. At this point, SS and SP can reduce the amount of cement used in FC by 60%, thereby reducing costs by about 30% and creating huge economic benefits. In addition, the use of SP instead of cement not only facilitates the reuse of solid waste but also reduces the amount of greenhouse gases produced in cement production, resulting in environmental benefits.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
FC | foamed concrete |
SS | special soil |
SP | slag powder |
PC | P.O42.5 cement |
SSFC | soil-slag foamed concrete |
SFC | slag-based foamed concrete |
XRD | X-ray diffraction |
SEM | scanning electron microscopy |
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Physical Properties | Measured Values | |
---|---|---|
Specific surface area (kg/m3) | 361 | |
Normal consistency (%) | 28 | |
Setting time (min) | Initial set | 223 296 |
Final set | ||
3 days compressive strength (MPa) | 5.6 | |
3 days flexural strength (MPa) | 2.74 |
Material | SiO2 | Al2O3 | CaO | Fe2O3 | MgO | K2O | TiO2 | Na2O | Mn3O4 |
---|---|---|---|---|---|---|---|---|---|
PC | 21.61 | 6.13 | 58.19 | 4.00 | 0.84 | 0.99 | 0.33 | 0.13 | 3.94 |
Laterite | 60.62 | 12.86 | 7.16 | 4.54 | 1.43 | 2.91 | 0.67 | 1.62 | 0.11 |
Loess | 69.43 | 13.43 | 1.19 | 5.01 | 1.11 | 2.42 | 0.77 | 0.50 | 0.075 |
Silt | 67.07 | 14.58 | 0.85 | 5.91 | 1.48 | 2.51 | 0.89 | 1.14 | 0.091 |
SP | 32.24 | 15.38 | 40.11 | 0.36 | 8.98 | 0.52 | 0.55 | 0.44 | 0.22 |
Code. | Type of Soil | Design Wet Density (kg/m3) | Soil (kg/m3) | SP (kg/m3) | PC (kg/m3) | Sodium Sulfate (kg/m3) | Water (kg/m3) | Foam (kg/m3) |
---|---|---|---|---|---|---|---|---|
La-0-75 | Laterite | 900 | 160 | 0 | 480 | 9.6 | 288 | 30 |
La-35-40 | 900 | 160 | 224 | 256 | 9.6 | 288 | 25.6 | |
La-45-30 | 900 | 160 | 288 | 192 | 9.6 | 288 | 24.5 | |
La-55-20 | 900 | 160 | 352 | 128 | 9.6 | 288 | 23.5 | |
Lo-0-75 | Loess | 900 | 160 | 0 | 480 | 9.6 | 288 | 30 |
Lo-35-40 | 900 | 160 | 224 | 256 | 9.6 | 288 | 30 | |
Lo-45-30 | 900 | 160 | 288 | 192 | 9.6 | 288 | 28.8 | |
Lo-55-20 | 900 | 160 | 352 | 128 | 9.6 | 288 | 27.7 | |
Si-0-75 | Silt | 900 | 160 | 0 | 480 | 9.6 | 288 | 30 |
Si-35-40 | 900 | 160 | 224 | 256 | 9.6 | 288 | 24.5 | |
Si-45-30 | 900 | 160 | 288 | 192 | 9.6 | 288 | 23.5 | |
Si-55-20 | 900 | 160 | 352 | 128 | 9.6 | 288 | 22.4 |
Code | 28 d Compressive Strength (MPa) | Compressive Strength after 5 Dry–Wet Cycles (MPa) | Water Stability Coefficient |
---|---|---|---|
La-0-75 | 4.32 | 3.66 | 0.847 |
La-35-40 | 3.20 | 2.53 | 0.806 |
La-45-30 | 2.32 | 1.85 | 0.797 |
La-55-20 | 1.88 | 1.43 | 0.761 |
Lo-0-75 | 4.25 | 3.72 | 0.875 |
Lo-35-40 | 3.18 | 2.64 | 0.830 |
Lo-45-30 | 2.21 | 1.76 | 0.796 |
Lo-55-20 | 1.62 | 1.22 | 0.753 |
Si-0-75 | 4.18 | 3.72 | 0.890 |
Si-35-40 | 3.17 | 2.75 | 0.868 |
Si-45-30 | 2.13 | 1.71 | 0.803 |
Si-55-20 | 1.54 | 1.18 |
Code | Average Diameter (μm) | Porosity (%) |
---|---|---|
La-0-75 | 160.47 | 0.39 |
La-35-40 | 172.11 | 0.42 |
La-45-30 | 173.50 | 0.44 |
La-55-20 | 182.56 | 0.48 |
Lo-0-75 | 167.39 | 0.41 |
Lo-35-40 | 169.48 | 0.45 |
Lo-45-30 | 173.13 | 0.52 |
Lo-55-20 | 186.22 | 0.54 |
Si-0-75 | 163.52 | 0.44 |
Si-35-40 | 168.46 | 0.46 |
Si-45-30 | 173.62 | 0.49 |
Si-55-20 | 183.45 | 0.54 |
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Yang, X.; Xu, S.; Zhao, Z.; Lv, Y. Strength, Durability, and Microstructure of Foamed Concrete Prepared Using Special Soil and Slag. Sustainability 2022, 14, 14952. https://doi.org/10.3390/su142214952
Yang X, Xu S, Zhao Z, Lv Y. Strength, Durability, and Microstructure of Foamed Concrete Prepared Using Special Soil and Slag. Sustainability. 2022; 14(22):14952. https://doi.org/10.3390/su142214952
Chicago/Turabian StyleYang, Xinkui, Shi Xu, Zenggang Zhao, and Yang Lv. 2022. "Strength, Durability, and Microstructure of Foamed Concrete Prepared Using Special Soil and Slag" Sustainability 14, no. 22: 14952. https://doi.org/10.3390/su142214952
APA StyleYang, X., Xu, S., Zhao, Z., & Lv, Y. (2022). Strength, Durability, and Microstructure of Foamed Concrete Prepared Using Special Soil and Slag. Sustainability, 14(22), 14952. https://doi.org/10.3390/su142214952