Study on the Shear Strength of Root-Soil Composite and Root Reinforcement Mechanism
Abstract
:1. Introduction
2. Materials and Experimental Methods
2.1. Experimental Materials
2.2. Experimental Methods
3. Limit Equilibrium Equation of Root-Soil Composites
4. Results
4.1. Shear Strength Parameters of Root-Soil Composites
4.2. Root Reinforcement Coefficients
4.3. Deformation Characteristics of the Soil Samples
5. Discussion
5.1. Effects of Root Distribution Angles
5.2. Effects of Root Diameter on the Root-Soil Composites
5.3. Variations of the Root Reinforcement Coefficients
5.4. Root Reinforcement Mechanism
6. Conclusions
- Root distribution angles and root diameters affect the shear strengths of the root-soil composites and the shear strength of rooted soils is enhanced by 1.1–2.5 times. The shear strength of the root-soil composites becomes high in the order of 60°, 30°, 0°, and 90° distribution angles, and decreases in the order of 2.0 mm, 1.0 mm, and 0.5 mm root diameters. Moreover, roots mainly affect the effective cohesion of the soils. However, the effective internal friction angle of the rooted soils changes slightly.
- The run-through rate and the lateral deformation of the root-soil composites increase in the order of 90°, 0°, 30°, and 60° root distribution angles (α), and the run-through rate of α = 90° and α = 0° are both 0. Meanwhile, the lateral deformation rate declines from 17.0% for α = 60° to 10.9% for α = 90°. Roots can effectively restrain the deformation of the root-soil composites.
- Two root reinforcement coefficients n and m were proposed to develop the limit equilibrium equation of the root-soil composites. n and m can be calculated by φ′ and c′. The limit equilibrium of the unreinforced soil is equivalent to that of the root-soil composite when both n and m are 1.000, which means that the limit equilibrium equation of the unreinforced soil is only a particular case. Therefore, the limit equilibrium equation of the root-soil composites has a wide applicability. Additionally, n and m represent the effects of root distribution angles and root diameters on the failure principal stress of the root-soil composites, respectively. The failure principal stress of the root-soil composites is positively correlated with n and m.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Notation
Shear strength | |
Normal stress | |
Pore water pressure | |
Effective stress | |
Effective cohesion | |
Effective internal friction angle | |
Confining pressure | |
Failure principal stress of the unreinforced soil | |
Failure principal stress of the root-soil composite | |
Passive earth pressure coefficient of the unreinforced soil | |
Passive earth pressure coefficient of the root-soil composite | |
Effective cohesion of the unreinforced soil | |
Effective internal frictional angle of the unreinforced soil | |
Effective cohesion of the root-soil composite | |
Effective internal frictional angle of the root-soil composite | |
Deviator of the failure principal stress of the unreinforced soil and root-soil composite | |
Generalized equivalent confining pressure | |
, | Root reinforcement coefficients of the soil |
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Particle Size/mm | >10 | 10–5 | 5–2 | 2–1 | 1–0.5 | 0.5–0.25 | 0.25–0.075 | ≤0.075 |
---|---|---|---|---|---|---|---|---|
Percentage/% | 16.3 | 12.8 | 14.2 | 25.97 | 13.3 | 8.23 | 6.5 | 2.7 |
Soil Dry Density (kg/m3) | Water Content (%) | Plastic Limit (%) | Liquid Limit (%) | Plasticity Index | Specific Gravity | Unified Soil Classification System, USCS |
---|---|---|---|---|---|---|
1800 | 16.5 | 15.2 | 30.7 | 15.5 | 2.73 | Well-graded sand with clay and gravel (SW-SC) |
Strength Parameter | Control Conditions | ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WR * | 0.5 mm Root Diameter | 1.0 mm Root Diameter | 2.0 mm Root Diameter | ||||||||||
0° | 30° | 60° | 90° | 0° | 30° | 60° | 90° | 0° | 30° | 60° | 90° | ||
c′ (kPa) | 30.17 | 40.00 | 36.88 | 33.70 | 50.21 | 45.43 | 42.14 | 38.99 | 60.27 | 51.92 | 48.64 | 43.03 | 74.15 |
Δc′ (kPa) | - | 9.83 | 6.71 | 3.53 | 20.04 | 15.26 | 11.97 | 8.82 | 30.10 | 21.75 | 18.47 | 12.86 | 43.98 |
φ′ (°) | 26.69 | 26.07 | 26.12 | 26.66 | 26.22 | 26.96 | 26.69 | 26.93 | 26.77 | 26.87 | 27.07 | 27.26 | 26.85 |
Root Reinforcement Coefficient | Control Condition | ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WR * | 0.5 mm Root Diameter | 1.0 mm Root Diameter | 2.0 mm Root Diameter | ||||||||||
0° | 30° | 60° | 90° | 0° | 30° | 60° | 90° | 0° | 30° | 60° | 90° | ||
n | 1.000 | 0.976 | 0.978 | 0.999 | 0.982 | 1.011 | 1.000 | 1.010 | 1.003 | 1.007 | 1.015 | 1.022 | 1.006 |
m | 1.000 | 1.326 | 1.222 | 1.117 | 1.664 | 1.506 | 1.397 | 1.292 | 1.998 | 1.721 | 1.612 | 1.426 | 2.458 |
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Li, P.; Xiao, X.; Wu, L.; Li, X.; Zhang, H.; Zhou, J. Study on the Shear Strength of Root-Soil Composite and Root Reinforcement Mechanism. Forests 2022, 13, 898. https://doi.org/10.3390/f13060898
Li P, Xiao X, Wu L, Li X, Zhang H, Zhou J. Study on the Shear Strength of Root-Soil Composite and Root Reinforcement Mechanism. Forests. 2022; 13(6):898. https://doi.org/10.3390/f13060898
Chicago/Turabian StyleLi, Pengcheng, Xuepei Xiao, Lizhou Wu, Xu Li, Hong Zhang, and Jianting Zhou. 2022. "Study on the Shear Strength of Root-Soil Composite and Root Reinforcement Mechanism" Forests 13, no. 6: 898. https://doi.org/10.3390/f13060898
APA StyleLi, P., Xiao, X., Wu, L., Li, X., Zhang, H., & Zhou, J. (2022). Study on the Shear Strength of Root-Soil Composite and Root Reinforcement Mechanism. Forests, 13(6), 898. https://doi.org/10.3390/f13060898