Study on Meso-Material Parameters of Submarine Weathered Granite Based on Parallel Bond Model
Abstract
:1. Introduction
2. Laboratory Tests
2.1. Physical Properties of Rock Samples
2.2. Uniaxial Compression Test of Weathered Granite
3. Numerical Model
3.1. Fundamentals of the Standard BPM
3.2. Calibration of Uniaxial Compression Test Parameters for Weathered Granite
4. Simulation of Biaxial Compression Test
5. Conclusions
- The parallel bonding model was calibrated by uniaxial testing, which found the elastic modulus, Poisson’s ratio, and compressive strength were in good agreement with the experimental values. However, the tensile strength and tensile-compressive ratio differed significantly from the experimental values, and fine-tuning was still unable to achieve an error within 10%.
- To simplify the experimental process, The parameters obtained by uniaxial compression were used for biaxial tests. By changing the confining pressure, the calculated compressive strength is compared with the results of uniaxial compression. When the enclosing pressure was very small, the calculated compressive strength was closer to the strength of uniaxial compression. However, when the enclosing pressure increased, the simulation results are quite different from the experimental results and are smaller than the experimental values. By increasing the friction angle, the calculated compressive strength increased, but the error was still large.
- The reason for a certain gap between the calculation results and the experimental results is the large resistance of the parallel bonding model to particle rotation, and to consider the effect of normal stress on shear strength. The bonding model can be modified by adding coefficients based on laboratory test results.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
ρ | Density |
Gs | Specific gravity |
ω | Water content |
e | Porosity ratio |
ωL | Liquid limit |
ωP | Plastic limit |
Cu | Uneven coefficient |
Cc | Curvature coefficient |
Normal force | |
Shear force | |
Bending moment acting at the center of the parallel bond | |
Twisting moment acting at the center of the parallel bond | |
Et | Effective modulus |
Ec | Compressive elastic modulus |
μ | Macro Poisson’s ratio |
σc | Uniaxial compressive strength |
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Density ρ/(g/cm3) | Specific Gravity Gs | Water Content ω/% | Porosity Ratio e | Liquid Limit ωL/% | Plastic Limit ωP/% |
---|---|---|---|---|---|
2.28 | 2.68 | 9.7 | 0.296 | 32.7 | 20.2 |
Sample No. | Confining Pressure MPa | Compressive Strength MPa | Elastic Modulus GPa | Cohesion MPa | Friction Angle ° |
---|---|---|---|---|---|
2-1 | 10 | 253.34 | 48.31 | 28.13 | 50.6 |
2-2 | 20 | 307.57 | 51.05 | ||
2-3 | 30 | 429.52 | 58.54 |
Surrounding Pressure | σc Test Value/MPa | σc Simulated Value/MPa | Error |
---|---|---|---|
1 × 106 | 132.37 | 143 | 4% |
10 × 106 | 253.34 | 207.7 | 18% |
20 × 106 | 307.57 | 258.9 | 15.8% |
30 × 106 | 429.52 | 302.7 | 29.5% |
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Zhang, S.; Zhang, B.; Han, B.; Zhang, Q.; Liu, D. Study on Meso-Material Parameters of Submarine Weathered Granite Based on Parallel Bond Model. Materials 2022, 15, 3878. https://doi.org/10.3390/ma15113878
Zhang S, Zhang B, Han B, Zhang Q, Liu D. Study on Meso-Material Parameters of Submarine Weathered Granite Based on Parallel Bond Model. Materials. 2022; 15(11):3878. https://doi.org/10.3390/ma15113878
Chicago/Turabian StyleZhang, Shilei, Bonan Zhang, Bo Han, Qiyue Zhang, and Di Liu. 2022. "Study on Meso-Material Parameters of Submarine Weathered Granite Based on Parallel Bond Model" Materials 15, no. 11: 3878. https://doi.org/10.3390/ma15113878
APA StyleZhang, S., Zhang, B., Han, B., Zhang, Q., & Liu, D. (2022). Study on Meso-Material Parameters of Submarine Weathered Granite Based on Parallel Bond Model. Materials, 15(11), 3878. https://doi.org/10.3390/ma15113878