Hydraulic Conductivity Characteristics of a Clayey Soil Incorporating Recycled Rubber and Glass Granules
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Recycled Waste Treated Soil Samples
2.3. Consolidation Test Procedure
2.4. Analytical Methods
3. Results and Discussion
3.1. Impact of RC or CG Inclusion on Compressibility Behavior of Reactive Soil
3.2. Impact of In Situ Stress on Hydraulic Conductivity
3.3. Impact of RC or CG Inclusion on Hydraulic Conductivity
3.4. Microstructure Analysis of Reactive Soil–RC/CG Composites
4. Conclusions
- The alteration in the initial void ratio caused by the incorporation of rubber particles is more pronounced where the increase in void ratio () can be represented as a logarithmic function in relation to the recycled waste content ().
- The hydraulic conductivity of RC– or CG–soil composites consistently declined as the applied stress increases, which indicates a similar trend between applied stress and void ratio. Moreover, the hydraulic conductivity values for CG-treated soil mixtures tend to be stable between 12.5 kPa and 50 kPa applied stress.
- The inclusion of RC and CG can effectively affect the hydraulic conductivity of the soil, regardless of the type of recycled waste. The relationship between the void ratio and hydraulic conductivity is nearly linear: the higher the void ratio, the higher the value of hydraulic conductivity. Meanwhile, the addition of CG initially enhances hydraulic conductivity up to a threshold, beyond which further addition causes a reduction in k, while the addition of RC initially reduces hydraulic conductivity and then increases up to a threshold, beyond which further addition causes a reduction in k.
- Results from SEM indicate that RC and CG inclusion plays an important role in hydraulic conductivity by changing pore size and its distribution on soil morphological structure. When CG was begun to be added, large interaggregate pores were created and caused the formation of smaller pores that were more interconnected, leading to an increase in the effective porosity and hydraulic conductivity of the soil. As for RC-treated soil, soil sample treated with 5% RC experienced a decrease in hydraulic conductivity due to the presence of interlock with nearby soil aggregates. When the content of RC increases, larger rubber crumbs become embedded within soil aggregates. The hydraulic conductivity showed a significant decrease when the amount of CG or RC added was sufficient to fill all interaggregate pores.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Material Type | Property | Value | Unit | Test Standard |
---|---|---|---|---|
Reactive soil | Atterberg limits | ASTM D4318 (ASTM, 2017) | ||
Liquid limit | 29 | % | ||
Plastic index | 15 | % | ||
Linear shrinkage | 6.8 | % | ASTM D854 (ASTM, 2017) | |
Specific gravity | 2.67 | ASTM D854 (ASTM, 2017) |
Mineral Compositions | Soil Content (%) |
---|---|
Coroudum | 23.17 |
Quartz | 30.26 |
Anatase | 1.19 |
Hematite | 1.53 |
Geothite | 3.33 |
Plagioclase (Albite) | 1.97 |
Plagioclase (Oligoclase, An16) | 7.40 |
Plagioclase (Oligoclase, An25) | 0.95 |
Microcline (maximum) | 2.73 |
Microcline (intermediate) | 0.63 |
Illite 2M1 | 7.05 |
Kaolinite (Kga-1b), PONKCS model | 3.64 |
Smectite 12 Å (SWy-2), PONKCS model | 10.29 |
Smectite 12 Å (SCa-3), PONKCS model | 5.87 |
Test Program | Curing Time | RC or CG Added (%) | Applied Stress (kPa) | |||
---|---|---|---|---|---|---|
0 | 5 | 10 | 20 | |||
Consolidation tests | 7 days | √ | √ | √ | √ | 6.25, 12.5, 25, 50, 100, 200 |
SEM imaging | 7 days | √ | √ | √ | / |
Recycled Waste Type | Content (%) | |
---|---|---|
Nontreated | 0 | 0.152 |
Recycled rubber crumb | 5 | 0.116 |
10 | 0.154 | |
20 | 0.125 | |
Recycled crushed glass | 5 | 0.149 |
10 | 0.123 | |
20 | 0.111 |
Content, % | Crushed Glass (CG) | Rubber Crumb (RC) |
---|---|---|
0 | 3.09 × 10−6 m/s | 3.09 × 10−6 m/s |
5 | 3.08 × 10−8 m/s | 2.12 × 10−8 m/s |
10 | 3.21 × 10−8 m/s | 4.36 × 10−8 m/s |
20 | 3.03 × 10−8 m/s | 3.60 × 10−8 m/s |
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Yu, M.; Gui, Y.; Laguna, R. Hydraulic Conductivity Characteristics of a Clayey Soil Incorporating Recycled Rubber and Glass Granules. Water 2023, 15, 2028. https://doi.org/10.3390/w15112028
Yu M, Gui Y, Laguna R. Hydraulic Conductivity Characteristics of a Clayey Soil Incorporating Recycled Rubber and Glass Granules. Water. 2023; 15(11):2028. https://doi.org/10.3390/w15112028
Chicago/Turabian StyleYu, Miao, Yilin Gui, and Ryan Laguna. 2023. "Hydraulic Conductivity Characteristics of a Clayey Soil Incorporating Recycled Rubber and Glass Granules" Water 15, no. 11: 2028. https://doi.org/10.3390/w15112028
APA StyleYu, M., Gui, Y., & Laguna, R. (2023). Hydraulic Conductivity Characteristics of a Clayey Soil Incorporating Recycled Rubber and Glass Granules. Water, 15(11), 2028. https://doi.org/10.3390/w15112028