Influence of the Fractal Distribution of Particle Size on the Critical State Characteristics of Calcareous Sand
Abstract
:1. Introduction
2. Materials and Methods
3. Experiments
3.1. Fractal Behavior of Particle Size Distribution
3.2. Critical State Characteristics of the Calcareous Sand
3.3. Influence of the Fractal Distribution of Particle Size on the Critical State Line in the q–p′ Plane of the Calcareous Sand
3.4. Influence of the Fractal Distribution of Particle Size on the Critical State Line in the e–p′ Plane of the Calcareous Sand
4. Theoretical Model
5. Model Validation
6. Conclusions
- (1)
- The particle size distribution of calcareous sand can obey the fractal law. The higher the fine sand content in the PSD was, the larger the value of Dm was. The fractal dimension can be used to characterize the particle size distribution of calcareous sand with different fine sand content.
- (2)
- The critical stress ratio of calcareous sand (Mc = 1.556) was around 12% higher than that of quartz sand (Mc = 1.392), and its critical state line parameters λ and ec0 were also larger than those of quartz sand. In the q–p′ plane and e–(p′/pa)α plane, the critical state lines of calcareous sand were always above those of the quartz sand.
- (3)
- The critical state lines of calcareous sand with different fractal dimensions in the q–p′ plane were unique.
- (4)
- The critical state equation of sand proposed by Li and Wang [28] was suitable for the fitting of the critical state line of calcareous sand in the e–(p′/pa)α plane.
- (5)
- In the e–(p′/pa)α plane, the critical state lines appeared to rotate anticlockwise as the fractal dimension increased. There was an “intersection” in the e–(p′/pa)α plane. When the effective confining pressure p′ was equal to 425 kPa, the critical void ratios of the calcareous sand with different fractal dimensions were approximately the same. Considering the influence of the fractal distribution of particle size, an expression for the critical state of calcareous sand in the e–(p′/pa)α plane was proposed.
- (6)
- Based on the critical state characteristics of calcareous sand with different fractal dimensions, the dilatancy equation and constitutive model suitable for calcareous sand were proposed. Moreover, a complete set of model parameters suitable for calcareous sand was given.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Particle Fraction (mm) | 5~2 | 2~1 | 1~0.5 | 0.5~0.25 | 0.25~0.075 | <0.075 |
---|---|---|---|---|---|---|
Calcareous sand | 9.9% | 7.3% | 33.5% | 34.3% | 14.2% | 0.8% |
8.8% | 6.5% | 29.5% | 30.2% | 23.7% | 1.3% | |
7.6% | 5.6% | 25.6% | 26.2% | 33.1% | 1.9% | |
6.4% | 4.7% | 21.7% | 22.2% | 42.6% | 2.4% | |
5.3% | 3.9% | 17.7% | 18.1% | 52.1% | 2.9% | |
Quartz sand | 7.6% | 5.6% | 25.6% | 26.2% | 33.1% | 1.9% |
Sample | Coefficient of Uniformity (Cu) | Coefficient of Curvature (Cc) | Maximum Void Ratio (emax) | Minimum Void Ratio (emin) | Specific Gravity (Gs) |
---|---|---|---|---|---|
Calcareous sand | 4.8 | 0.9 | 1.19 | 0.80 | 2.70 |
Quartz sand | 4.8 | 0.9 | 0.75 | 0.39 | 2.67 |
Elastic Parameters | Critical State Parameters | Dilatancy Parameters | Hardening Parameters | |
---|---|---|---|---|
G0 =125 | M = 1.58 | d = 1.91 | d0 = 6.05 | h1 = 3.35 |
ν = 0.30 | a = 2.20 | f = −2.30 | m = 0.74 | h2 = 3.05 |
b = 1.05 | α = 0.55 | n = 0.57 | ||
c = −0.38 |
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Shen, X.; Shen, Y.; Xu, J.; Liu, H. Influence of the Fractal Distribution of Particle Size on the Critical State Characteristics of Calcareous Sand. Fractal Fract. 2022, 6, 165. https://doi.org/10.3390/fractalfract6030165
Shen X, Shen Y, Xu J, Liu H. Influence of the Fractal Distribution of Particle Size on the Critical State Characteristics of Calcareous Sand. Fractal and Fractional. 2022; 6(3):165. https://doi.org/10.3390/fractalfract6030165
Chicago/Turabian StyleShen, Xue, Yang Shen, Junhong Xu, and Hanlong Liu. 2022. "Influence of the Fractal Distribution of Particle Size on the Critical State Characteristics of Calcareous Sand" Fractal and Fractional 6, no. 3: 165. https://doi.org/10.3390/fractalfract6030165
APA StyleShen, X., Shen, Y., Xu, J., & Liu, H. (2022). Influence of the Fractal Distribution of Particle Size on the Critical State Characteristics of Calcareous Sand. Fractal and Fractional, 6(3), 165. https://doi.org/10.3390/fractalfract6030165