Circularity Assessment of GeoBarrier System as Sustainable Retaining Wall
Abstract
1. Introduction
2. GeoBarrier System (GBS): Characteristics and Performance
3. Circular Economy (CE) Assessment Frameworks for Geotechnical and GBS Projects
4. Materials and Methods
4.1. Site Description and Characterisation
4.2. Numerical Analysis
- saturated:
4.3. Proposed Circular Assessment Framework
5. Results
5.1. GBS Case Study: Site Overview and Characterisation
5.2. GBS Case Study: Numerical Analysis
5.3. Circularity Assessment
6. Discussion
- Water circularity: 25%
- Material circularity: 25%
- Waste circularity: 20%
- Site quality: 15%
- Energy circularity: 5%
- Carbon performance: 5%
- Durability and maintenance: 5%
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| CE | Circular economy |
| CBS | Capillary barrier system |
| GBS | GeoBarrier system |
| LCA | Life cycle assessment |
| ESG | Environmental, social, and governance |
| EGI | Environmental geotechnics indicator |
| RSS | Reinforced soil system |
| ASM | Approved soil mixture |
| WEV | Water-entry value |
| SWCC | Soil–water characteristic curve |
| LCT | Life cycle thinking |
| LCC | Life cycle costing |
| S-LCA | Social life cycle assessment |
| LCSA | Life cycle sustainability assessment |
| Geo-SAT | Geo-Sustainability Assessment Tool |
| RCA | Recycled concrete aggregate |
| CRCA | Coarse recycled concrete aggregates |
| FRCA | Fine recycled concrete aggregates |
| GSD | Grain-size distribution |
| CD | Consolidated-drained |
| FOS | Factor of safety |
| GWT | Groundwater table |
| AHP | Analytic hierarchy process |
| MCDA | Multicriteria decision analysis |
| USCS | Unified soil classification system |
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| Description | ASM | Fine Recycled Concrete Aggregate (FRCA) | Coarse Recycled Concrete Aggregate (CRCA) | Original Soil |
|---|---|---|---|---|
| USCS ** | SC | SP | GP | CH |
| Specific gravity, GS | 2.41 | 2.57 | 2.66 | 2.67 |
| Gravel content (%) | 0 | 32 | ||
| Sand (%) | 76 | 0 | 100 | 5 |
| Silt (%) | 8 | 100 | 0 | 47 |
| Clay (%) | 16 | 0 | 0 | 17 |
| Liquid Limit, LL (%) | 16 | NA * | NA | 31 |
| Plastic Limit, PL (%) | 41 | NA | NA | 52 |
| Plasticity Index, PI (%) | 25 | NA | NA | 21 |
| Dry density, d (mg/m3) | 1.18 | 1.67 | 1.57 | 1.37 |
| Parameter | ASM | Fine Recycled Concrete Aggregate (FRCA) | Coarse Recycled Concrete Aggregate (CRCA) | Original Soil |
|---|---|---|---|---|
| Unit weight (kN/m3) | 18 | 16 | 17 | 17 |
| Effective cohesion (kPa) | 2 | 0 | 0 | 2 |
| Effective friction angle (o) | 30 | 38 | 42 | 28 |
| ϕb angle (o) | 15 | 19 | 21 | 14 |
| Materials | Material Type | Volume of Single Geobag (m3) | Total Volume (m3) |
|---|---|---|---|
| ASM | non-recyclable | 0.30 | 99.00 |
| Fine recycled concrete aggregate (FRCA) | recyclable | 0.25 | 82.50 |
| Coarse recycled concrete aggregate (CRCA) | recyclable | 0.15 | 49.50 |
| Original soil–compacted soil | non-recyclable | 0.40 | 112.09 |
| Water Circularity (%) | Energy Circularity (%) | Material Circularity (%) | Waste Circularity (%) | Site Quality | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| %Water Inflow | %Water Outflow | Renewable Energy | Total Energy | Vre (m3) | Vtotal (m3) | Vtrtot (m3) | Vstot (m3) | A (m2) | Bi (m2) | Bii (m2) | Biii (m2) | Biv (m2) |
| 10 | 90 | 0 | 100 | 132 | 343.09 | 244.09 | 560.99 | 1371.28 | 0 | 343.01 | 1028.27 | 0 |
| Score | 50 | Score | 0 | Score | 38.47 | Score | 43.51 | Score | 2.25 | |||
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Abishev, R.; Satyanaga, A.; Guney, M.; Kabzhassarova, M.; Lim, A.; Kim, J. Circularity Assessment of GeoBarrier System as Sustainable Retaining Wall. Sustainability 2026, 18, 6771. https://doi.org/10.3390/su18136771
Abishev R, Satyanaga A, Guney M, Kabzhassarova M, Lim A, Kim J. Circularity Assessment of GeoBarrier System as Sustainable Retaining Wall. Sustainability. 2026; 18(13):6771. https://doi.org/10.3390/su18136771
Chicago/Turabian StyleAbishev, Rezat, Alfrendo Satyanaga, Mert Guney, Marzhan Kabzhassarova, Aswin Lim, and Jong Kim. 2026. "Circularity Assessment of GeoBarrier System as Sustainable Retaining Wall" Sustainability 18, no. 13: 6771. https://doi.org/10.3390/su18136771
APA StyleAbishev, R., Satyanaga, A., Guney, M., Kabzhassarova, M., Lim, A., & Kim, J. (2026). Circularity Assessment of GeoBarrier System as Sustainable Retaining Wall. Sustainability, 18(13), 6771. https://doi.org/10.3390/su18136771

