Study on Improvement Characteristics of a Novel Geotextile with Stitched Transverse Ribs
Abstract
:1. Introduction
2. Direct Shear Tests
2.1. Test Materials
2.2. Test Equipment
2.3. Test Method
3. Experimental Results
3.1. Comparison of Reinforcement Effect of Different Reinforcement Materials
3.2. Comparison of Shear Strength of Stitched Rib Geotextile Reinforcement
3.3. Reinforcement Mechanism of the Novel Geotextile with Stitched Transverse Ribs
4. Conclusions
- (1)
- Geotextile B exhibits the best reinforcement effect among the four conventional geotextiles, and the shear strength of geotextile B is 20% higher than that of pure sandy soil. Moreover, the surface of geotextile B is rough enough to provide larger friction and form a certain embedded locking effect with sandy soil when geotextile B is compared with geotextiles C and D. Geotextile B has a greater thickness, higher strength and better reinforcement effect compared with the woven geotextile A. However, geogrid shows a better reinforcement effect than the four conventional geotextiles.
- (2)
- The shear strength of the novel geotextile with stitched transverse ribs is significantly increased. When the number of ribs increases, the magnitude of stress and the friction angle increase, but the cohesion does not significantly change. When the shear displacement is small, the shear strength of the novel geotextile with three ribs is higher than that of the geogrid. However, when the shear displacement becomes larger, the shear strength of the novel geotextile is higher than that of the geogrid, indicating that the novel geotextile exhibits a very good reinforcement effect.
- (3)
- The frictional resistance from the underlying fabric, the locking effect, the transverse restraint effect, and the frictional effect of ribs contribute to the novel geotextile’s shear strength. When normal stress is low, the transverse rib is the key stress part of the geotextile, and the overall reinforcement effect is mainly from the transverse rib while the friction force of the underlying fabric requires a large normal force.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Characteristic Particle Size | Uniformity Coefficient Cu | Curvature Coefficient Cc | ||
---|---|---|---|---|
d60/mm | d30/mm | d10/mm | ||
0.94 | 0.45 | 0.18 | 5.22 | 1.20 |
Reinforcing Material | Mass per Unit Area/(g/m2) | Ultimate Tensile Strength/(kN/m) | Ultimate Elongation/% | ||
---|---|---|---|---|---|
Vertical | Horizontal | Vertical | Horizontal | ||
Geotextile A | 460.0 | 90.20 | 58.45 | 15.37% | 14.21% |
Geotextile B | 428.5 | 99.65 | 83.45 | 13.21% | 15.66% |
Geotextile C | 290.0 | 58.75 | 46.30 | 19.14% | 14.37% |
Geotextile D | 200.0 | 30.30 | 36.00 | 11.26% | 12.74% |
Uniaxial geogrid | - | 97.30 | - | 11.60% | - |
Groups | Reinforcing Material | Shear Rate (mm/min) | Reinforcement Method | Normal Stress (kPa) | |
---|---|---|---|---|---|
Without reinforcement | I | None | 1 | flattening | 25, 50, 100, 150 |
Conventional geotextiles | II | Geotextiles A | 1 | flattening | 25, 50, 100, 150 |
III | Geotextiles B | 1 | flattening | 25, 50, 100, 150 | |
IV | Geotextiles C | 1 | flattening | 25, 50, 100, 150 | |
V | Geotextiles D | 1 | flattening | 25, 50, 100, 150 | |
Geogrid | VI | Uniaxial geogrid | 1 | flattening | 25, 50, 100, 150 |
Novel geotextiles with stitched transverse ribs | VII | Geotextiles B | 1 | stitching 1 rib | 25, 50, 100, 150 |
VIII | Geotextiles B | 1 | stitching 2 ribs | 25, 50, 100, 150 | |
IX | Geotextiles B | 1 | stitching 3 ribs | 25, 50, 100, 150 |
Interface | Cohesion/kPa | Friction Angle/° |
---|---|---|
Steel plate–sand | 2.54 | 20.86 |
Geotextile A–sand | 5.07 | 22.67 |
Geotextile B–sand | 5.38 | 23.82 |
Geotextile C–sand | 4.20 | 22.44 |
Geotextile D–sand | 6.64 | 20.18 |
Geogrid–sand | 13.86 | 25.85 |
Reinforcement Method | Normal Stress (kPa) | The Proportion of Each Part (%) | |
---|---|---|---|
Friction Force of the Underlying Geotextile F1 | Stress Force Provided by Transverse Ribs F2 + F3 | ||
Stitching 1 rib | 25 | 42.5 | 57.5 |
50 | 49.1 | 50.9 | |
100 | 62.7 | 37.3 | |
150 | 70.0 | 30.0 | |
Stitching 2 ribs | 25 | 30.9 | 69.1 |
50 | 38.2 | 61.8 | |
100 | 52.2 | 47.8 | |
150 | 61.4 | 38.6 | |
Stitching 3 ribs | 25 | 27.4 | 72.6 |
50 | 32.5 | 67.5 | |
100 | 44.8 | 55.2 | |
150 | 50.0 | 50.0 |
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Liu, W.; Li, H.; Yang, Y.; Xu, P.; Dai, Z.; Yang, G.; Wang, H.; Wang, Z. Study on Improvement Characteristics of a Novel Geotextile with Stitched Transverse Ribs. Appl. Sci. 2023, 13, 1536. https://doi.org/10.3390/app13031536
Liu W, Li H, Yang Y, Xu P, Dai Z, Yang G, Wang H, Wang Z. Study on Improvement Characteristics of a Novel Geotextile with Stitched Transverse Ribs. Applied Sciences. 2023; 13(3):1536. https://doi.org/10.3390/app13031536
Chicago/Turabian StyleLiu, Weichao, He Li, Yan Yang, Peng Xu, Zhengjie Dai, Guangqing Yang, He Wang, and Zhijie Wang. 2023. "Study on Improvement Characteristics of a Novel Geotextile with Stitched Transverse Ribs" Applied Sciences 13, no. 3: 1536. https://doi.org/10.3390/app13031536
APA StyleLiu, W., Li, H., Yang, Y., Xu, P., Dai, Z., Yang, G., Wang, H., & Wang, Z. (2023). Study on Improvement Characteristics of a Novel Geotextile with Stitched Transverse Ribs. Applied Sciences, 13(3), 1536. https://doi.org/10.3390/app13031536