Experimental Study on Strength and Microstructure of Loess Improved by CG-2 Curing Agent and Cement
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Test Mix Ratio
2.3. Testing Methods
2.3.1. Compaction Test
2.3.2. Unconfined Compressive Strength Test
2.3.3. Triaxial Test
2.3.4. Freeze–Thaw Cycle Test
2.3.5. Dry–Wet Cycle Test
2.3.6. SEM Test
2.3.7. NMR Test
3. Results
3.1. Compaction Test
3.2. UCS Test
3.2.1. Effect of Cement and Curing Agent Content
3.2.2. Effect of Compaction Degree
3.2.3. Effect of Curing Age
3.3. Triaxial Test
3.4. Freeze–Thaw Cycle Test
3.5. Dry–Wet Cycle Test
3.6. Qualitative Analysis of the Microstructure of Modified Loess
3.7. Quantitative Analysis of Curing Agent Content on the Microstructure of Improved Loess
4. Discussion
5. Conclusions
- (1)
- Cement and curing agent are the main factors affecting the strength and stability of the improved loess. Increasing the content of curing agent and cement can significantly enhance the unconfined compressive strength of the improved loess. And, under the same strength conditions, the incorporation of curing agent can effectively reduce the amount of cement. The incorporation of curing agent and cement will also increase the peak strength and residual strength of the stress–strain curve of the improved loess.
- (2)
- Curing agent and cement can significantly improve the freeze–thaw resistance and dry–wet cycle resistance of the improved loess. Compaction and curing age are also convenient and effective means of improving the strength of the improved loess.
- (3)
- Considering the economic benefit and the strength index of the engineering application, the optimum mixing ratio of cement and curing agent is 6% and 0.020%. The compaction degree is at least 94%, and the curing age is at least 14 days.
- (4)
- In the qualitative and quantitative analysis of the microstructure of the improved loess, it was found that the reaction products of the curing agent and cement with the loess will wrap and agglomerate the soil particles, and its unit form develops from single particle to aggregate and agglomerate. These aggregates further fill the skeleton of soil particles, and their connection mode develops from a large number of point contacts to surface contacts, which eventually changes the arrangement of soil particles from the dominance of large pores and overhead pores to the dominance of intergranular pores, so the strength and stability of the soil are greatly improved.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Liquid Limit WL/% | Plastic Limit WP/% | Optimum Moisture Content/% | Maximum Dry Density/g·cm−3 | Particle Size Distribution/% | |||||
---|---|---|---|---|---|---|---|---|---|
<0.005 | 0.005–0.05 | 0.05–0.075 | 0.075–0.1 | 0.1–0.25 | >0.25 | ||||
28.8 | 18.2 | 12.1 | 1.88 | 9.28 | 63.11 | 18.02 | 6.56 | 3.03 | 0 |
Break Off Strength/MPa | Compressive Strength/MPa | Setting Time/min | Specific Surface Area (m2/kg) | |||
---|---|---|---|---|---|---|
3 d | 28 d | 3 d | 28 d | initial set | final set | 338 |
4.8 | 8.6 | 24.6 | 44.3 | 205 | 255 |
Dosage of Curing Agent /% | Cement Content /% | Optimum Moisture Content /% | Maximum Dry Density /g·cm−3 |
---|---|---|---|
0 | 4 | 12.85 | 1.93 |
6 | 13.35 | 1.98 | |
8 | 12.85 | 1.91 | |
0.015 | 4 | 12.25 | 1.90 |
6 | 12.55 | 1.91 | |
8 | 12.41 | 1.89 | |
0.020 | 4 | 12.62 | 1.91 |
6 | 12.78 | 1.93 | |
8 | 12.50 | 1.90 | |
0.025 | 4 | 12.35 | 1.90 |
6 | 12.55 | 1.91 | |
8 | 12.40 | 1.86 |
Number of Wet and Dry Cycles | Without Curing Agent | 0.020% Curing Agent Content | ||||
---|---|---|---|---|---|---|
Cement Content | CEMENT Content | |||||
4% | 6% | 8% | 4% | 6% | 8% | |
0 | 1.6 | 2.1 | 2.5 | 2.1 | 2.5 | 2.9 |
3 | 1.2 | 1.8 | 2.2 | 1.8 | 2.3 | 2.7 |
5 | 0.9 | 1.6 | 2.0 | 1.6 | 2.1 | 2.5 |
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Ma, X.; Liu, Y.; Yin, W.; Wang, X.; Guo, S. Experimental Study on Strength and Microstructure of Loess Improved by CG-2 Curing Agent and Cement. Buildings 2024, 14, 877. https://doi.org/10.3390/buildings14040877
Ma X, Liu Y, Yin W, Wang X, Guo S. Experimental Study on Strength and Microstructure of Loess Improved by CG-2 Curing Agent and Cement. Buildings. 2024; 14(4):877. https://doi.org/10.3390/buildings14040877
Chicago/Turabian StyleMa, Xuening, Yuhang Liu, Wenhua Yin, Xiaodong Wang, and Shulin Guo. 2024. "Experimental Study on Strength and Microstructure of Loess Improved by CG-2 Curing Agent and Cement" Buildings 14, no. 4: 877. https://doi.org/10.3390/buildings14040877
APA StyleMa, X., Liu, Y., Yin, W., Wang, X., & Guo, S. (2024). Experimental Study on Strength and Microstructure of Loess Improved by CG-2 Curing Agent and Cement. Buildings, 14(4), 877. https://doi.org/10.3390/buildings14040877