Experimental Study on Physical Mechanical Properties and Microstructure of Diatomite Soil in Zhejiang Province, China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
3. Results
3.1. Basic Physical Property Tests
3.2. Mechanical Strength Characteristic Tests
3.2.1. Consolidation Test
3.2.2. Direct Shear Test
3.2.3. Triaxial Test
4. Discussion
4.1. Microstructure and Composition of Diatomite Soil
4.2. Basic Physical and Deformation Characteristics of Diatomite Soil
4.3. Mechanical Properties of Diatomite Soil in Direct Shear Test
4.4. Mechanical Properties of Diatomite Soil in Triaxial Test
5. Conclusions
- (1)
- The diatomite soil has special properties different from general soil, including small particle size, low specific gravity value, high liquid-plastic limit, and high compressibility. The strength indexes and of diatomite soil will decrease with an increase in water content because diatomite soil is rich in aluminosilicate and contains more kaolinite, mica, and other minerals in mineral composition, which will show strong water absorption and certain volume expansion. Furthermore, the water molecules affect the overlapping cell structure composed of silicon, aluminum, and oxygen. The strength of diatomite soil is greatly affected by water, which has a tremendously adverse effect on the stress and deformation of diatomite soil.
- (2)
- From the SEM analysis, it is found that the unique microstructure of diatomite soil increases the porosity of diatomite soil. When the diatomite soil is relatively dry and the pore is large, the inter layer structural force is mainly provided by the contact of particles, and the contact area is large—the soil structure is relatively stable. When the pores in the soil decrease and are filled by water, the soil particles adhere to each other under the suction. The XRD results show that there are many chemical elements in diatomite soil, including Si, K, Al, H, O, etc. These elements exist in the form of oxides in diatomite soil. This kind of diatomite soil has higher aluminum content. Aluminum is usually combined with other elements such as silicon and oxygen to form a variety of oxides and minerals.
- (3)
- In the triaxial test, when the dry density of diatomite soil increases from 1.30 g/cm3 to 1.50 g/cm3, the effective internal friction angle of diatomite soil increased from 5.6° to 14.5°, and the effective cohesion increased from 30.9 kPa to 49.6 kPa. The stress–strain curve of diatomite soil changed from a weak softening type to a weak hardening type when the confining pressure was above 200 kPa. From the stress–strain curve, the linear equation curve of and can be fitted, and the fitting effect is good.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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2.47 | 36.69 | 94.91 | 59 | 0.07 |
2.272~2.277 | 0.342~0.336 | 0.043~0.060 |
Confining Pressure/kPa | a (10−3) | b (10−4) | |
---|---|---|---|
1.40 | 200 | 14.8 | 61 |
300 | 21.0 | 51 | |
400 | 23.5 | 37 | |
1.50 | 200 | 3.1 | 34 |
300 | 7 | 30 | |
400 | 12 | 20 |
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Gao, L.; Luo, Y.; Kang, Y.; Gao, M.; Abdulhafidh, O. Experimental Study on Physical Mechanical Properties and Microstructure of Diatomite Soil in Zhejiang Province, China. Appl. Sci. 2022, 12, 387. https://doi.org/10.3390/app12010387
Gao L, Luo Y, Kang Y, Gao M, Abdulhafidh O. Experimental Study on Physical Mechanical Properties and Microstructure of Diatomite Soil in Zhejiang Province, China. Applied Sciences. 2022; 12(1):387. https://doi.org/10.3390/app12010387
Chicago/Turabian StyleGao, Lei, Yi Luo, Yingeng Kang, Mingjun Gao, and Omar Abdulhafidh. 2022. "Experimental Study on Physical Mechanical Properties and Microstructure of Diatomite Soil in Zhejiang Province, China" Applied Sciences 12, no. 1: 387. https://doi.org/10.3390/app12010387
APA StyleGao, L., Luo, Y., Kang, Y., Gao, M., & Abdulhafidh, O. (2022). Experimental Study on Physical Mechanical Properties and Microstructure of Diatomite Soil in Zhejiang Province, China. Applied Sciences, 12(1), 387. https://doi.org/10.3390/app12010387