Mechanical Properties and Constitutive Model of Calcareous Sand Strengthened by MICP
Abstract
:1. Introduction
2. Materials and Methods
2.1. Reaction Principle of MICP Technology
2.2. Bacteria and Culture
2.3. Calcareous Sand
2.4. Experimental Procedure
2.4.1. Determination of Microbial Concentration and Activity
2.4.2. Strengthening Calcareous Sand Column with MICP
2.4.3. Determination of Ca2+ Concentration
2.4.4. Determination of Carbonate Content
2.4.5. Triaxial Compression Test and Constitutive Model Study
3. Results
3.1. Degree of Mineralization Reaction and Amount of Carbonate Precipitation
3.2. Triaxial Compression Test
3.3. Effect of Seawater on Stress–Strain Relationship
3.4. Constitutive Model
3.4.1. Model Establishment and Parameter Solution
3.4.2. Model Parameter Solution
3.4.3. Model Validation
4. Conclusions
- (1)
- It was found that the failure strength of MICP-strengthened calcareous sand samples was affected by the degree of compaction, reinforcement effect, water environment and confining pressure. Under the same conditions, the curing effect of the freshwater environment sample was better than that of the seawater environment sample. The shear strength in the seawater environment reached more than 1.4 MPa, which meets the standard for practical application in marine engineering and shows that it is feasible to strengthen calcareous sand with MICP under seawater conditions.
- (2)
- The strength of the calcareous sand sample strengthened by MICP increased with the increase in the number of reinforcement days, confining pressure, and density. The best number of reinforcement days was 7 days after curing, at which time the strength of the sample increased the quickest, the bearing capacity was large, and the material loss was small. With the increase in confining pressure, the failure strain of the sand column increased continuously, the hardening effect was more evident, and the residual strength also increased. These results can effectively improve the bearing capacity of calcareous sand in marine engineering. The compactness had a clear effect on the strength of the added solid. With the increase in the sample density, although the strength of the seawater environment sample was small, the increase in strength was large, indicating that the MICP curing effect can be optimized by improving the compactness of the foundation in marine engineering.
- (3)
- In this study, the CPE model was used to fit the triaxial experimental results of calcareous sand, and the overall fitting accuracy was high. This indicates that the model can accurately predict the stress–strain relationship during the loading process of the sample and show the process of calcareous sand sample damage, and thus can reasonably predict the application of calcareous sand in marine engineering.
5. Discussion
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Water Environment | Number of Days (d) | Density (g/cm3) | Cell Pressure (kPa) | a | b | m | n | k | |
---|---|---|---|---|---|---|---|---|---|
Freshwater | 5 | 1.38 | 100 | 314.6 | 0.69 | 3.2 | 1.2 | 845.9 | 0.992 |
7 | 490.2 | 0.43 | 2.5 | 1.43 | 1094.5 | 0.985 | |||
9 | 1482.3 | 1.27 | 4.63 | 1.42 | 1065.2 | 0.976 | |||
11 | 450.5 | 0.004 | 1.41 | 3.68 | 1368.6 | 0.977 | |||
7 | 1.34 | 3186.8 | 1.45 | 1.36 | 0.89 | 1135.2 | 0.966 | ||
1.46 | 793.1 | 0.01 | 1.1 | 3.39 | 1430.1 | 0.995 | |||
1.38 | 50 | 340.5 | 0.73 | 3.76 | 1.28 | 562.5 | 0.983 | ||
200 | 479,739 | 7.76 | −1.7 | −0.65 | 246.1 | 0.999 | |||
400 | 5672.3 | 1.42 | −0.23 | −1.2 | 42.57 | 0.998 | |||
Seawater | 5 | 1.38 | 100 | 1112.8 | 0.98 | 3.12 | 1.4 | 826.3 | 0.996 |
7 | 834.9 | 0.15 | 1.17 | 1.59 | 785.9 | 0.997 | |||
9 | 303.5 | 0.42 | 2.85 | 1.47 | 1217.1 | 0.972 | |||
11 | 1195 | 0.58 | 1.76 | 1.15 | 1255 | 0.975 | |||
7 | 1.34 | 529.2 | 0.02 | 1.42 | 3.4 | 801.2 | 0.991 | ||
1.46 | 818.9 | 0.05 | 1.37 | 2.86 | 1354.9 | 0.975 | |||
1.38 | 50 | 762.2 | 0.13 | 1.1 | 1.59 | 746.1 | 0.995 | ||
200 | 1685 | 0.69 | 1.2 | 0.83 | 1219.2 | 0.993 | |||
400 | 76,449 | 3.9 | −0.78 | −0.35 | 245.39 | 0.998 |
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Wang, Z.; Zhao, X.; Chen, X.; Cao, P.; Cao, L.; Chen, W. Mechanical Properties and Constitutive Model of Calcareous Sand Strengthened by MICP. J. Mar. Sci. Eng. 2023, 11, 819. https://doi.org/10.3390/jmse11040819
Wang Z, Zhao X, Chen X, Cao P, Cao L, Chen W. Mechanical Properties and Constitutive Model of Calcareous Sand Strengthened by MICP. Journal of Marine Science and Engineering. 2023; 11(4):819. https://doi.org/10.3390/jmse11040819
Chicago/Turabian StyleWang, Ziyu, Xiangyu Zhao, Xin Chen, Peng Cao, Liang Cao, and Wenjing Chen. 2023. "Mechanical Properties and Constitutive Model of Calcareous Sand Strengthened by MICP" Journal of Marine Science and Engineering 11, no. 4: 819. https://doi.org/10.3390/jmse11040819
APA StyleWang, Z., Zhao, X., Chen, X., Cao, P., Cao, L., & Chen, W. (2023). Mechanical Properties and Constitutive Model of Calcareous Sand Strengthened by MICP. Journal of Marine Science and Engineering, 11(4), 819. https://doi.org/10.3390/jmse11040819