SUSTAINABLE IMPROVEMENT OF LATERITIC SOIL USING ALUMINIUM DROSS AND SODIUM SILICATE -A GEOTECHNICAL EVALUATION
Abstract
Lateritic soils are widely used in tropical regions for construction purposes; however, their high plasticity, low bearing capacity, and moisture sensitivity often limit their direct application. This study investigates the effectiveness of aluminium dross and sodium silicate, used individually and in combination, as sustainable stabilizing agents for lateritic soil. Lateritic soil samples obtained from ikpayongo, Makurdi, Nigeria were treated with varying proportions of aluminium dross (0–10%) and sodium silicate (2.5–10%). Laboratory tests including chemical composition analysis (XRF and XRD), Atterberg limits, compaction characteristics, and California Bearing Ratio (CBR) tests were conducted in accordance with British Standards and Nigerian General Specifications. Results show that the natural soil is a highly weathered laterite rich in silica, alumina, and iron oxides, with poor geotechnical properties unsuitable for subgrade applications. Aluminium dross exhibited strong pozzolanic characteristics, significantly improving compaction and strength properties up to an optimum content of 7.5%. Beyond this level, strength reductions were observed due to over-stabilization. Binary stabilization using aluminium dross and sodium silicate produced superior improvements, yielding higher maximum dry density, lower plasticity index, and markedly enhanced soaked and unsoaked CBR values. The combined stabilization significantly improved moisture resistance and dimensional stability through enhanced cementitious and alkali-activated reactions. The findings demonstrate that aluminium dross activated with sodium silicate provides an effective, sustainable, and cost-efficient alternative to conventional soil stabilizers for lateritic soils, particularly in tropical developing regions
KEYWORDS: Lateritic soil; Aluminium dross; Sodium silicate; Soil stabilization; CBR; Sustainability
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Adewumi, A. J., Akinwumi, I. I., & Olaoye, R. A. (2022). Sustainable stabilization of lateritic soil using industrial waste materials: A laboratory evaluation. International Journal of Pavement Engineering, 23(6), 1951–1964. https://doi.org/10.1080/10298436.2020.1835884
Afolayan, O. D., Bello, A. A., & Aladegboye, O. J. (2022). Strength improvement of tropical lateritic soils using industrial by-products. Construction and Building Materials, 321, 126401. https://doi.org/10.1016/j.conbuildmat.2022.126401
Akinropo, A. O., Adeyemi, G. O., & Falade, F. A. (2023). Microstructural and strength characteristics of lateritic soil stabilized with alumina-rich waste. Journal of Materials in Civil Engineering, 35(4), 04023028. https://doi.org/10.1061/(ASCE)MT.1943-5533.0004657
Akinwumi, I. I., Booth, C. A., & Ajayi, L. A. (2021). Use of waste materials in soil stabilization: A review. Journal of Cleaner Production, 315, 128205. https://doi.org/10.1016/j.jclepro.2021.128205
Al-Bared, M. A. M., & Marto, A. (2021). Review on the geotechnical properties of chemically stabilized soils. International Journal of GEOMATE, 20(78), 1–12. https://doi.org/10.21660/2021.78.5197
Al-Qadiri, A. H., Al-Sharif, M., & Al-Hunaiti, A. (2018). Utilization of aluminum dross in soil stabilization. Jordan Journal of Civil Engineering, 12(3), 378–390.
Awoyera, P. O., & Adesina, A. (2020). Alkali-activated materials: Applications in soil stabilization. Cleaner Engineering and Technology, 1, 100001. https://doi.org/10.1016/j.clet.2020.100001
Bernal, S. A., & Provis, J. L. (2019). Durability of alkali-activated materials: Progress and perspectives. Journal of the American Ceramic Society, 102(6), 3077–3098. https://doi.org/10.1111/jace.16231
Budihal, S. V., Manjunatha, B., & Ajgaonkar, V. (2023). Mineralogical influence on stabilization of tropical soils. Materials Today: Proceedings, 72, 2258–2264. https://doi.org/10.1016/j.matpr.2022.12.217
Chandra, S., & Sharma, A. K. (2020). Stabilization of expansive soils using industrial wastes. Ground Improvement, 173(2), 97–108. https://doi.org/10.1680/jgrim.18.00031
Chen, Y., Li, Z., & Wang, L. (2024). Curing time effects on chemically stabilized soils. Soils and Foundations, 64(1), 101–114. https://doi.org/10.1016/j.sandf.2023.12.004
Das, B. M. (2016). Principles of geotechnical engineering (8th ed.). Cengage Learning.
Federal Ministry of Works and Housing. (1997). General specifications for roads and bridges (Vol. 2). Government Press.
Ghosh, A., Subbarao, C., & Kumar, A. (2017). Strength behavior of lateritic soil stabilized with aluminum dross. International Journal of Geotechnical Engineering, 11(4), 386–394. https://doi.org/10.1080/19386362.2016.1245495
Kumar, A., Walia, B. S., & Mohan, J. (2018). Compressive strength of clay stabilized using sodium silicate. Construction and Building Materials, 165, 447–456. https://doi.org/10.1016/j.conbuildmat.2018.01.037
Li, X., Zhang, T., & Wang, Y. (2024). Synergistic stabilization of soils using industrial by-products and alkali activators. Construction and Building Materials, 382, 131302. https://doi.org/10.1016/j.conbuildmat.2023.131302
Liu, Y., Shi, C., & Zhang, Z. (2020). Alkali-activated stabilization of clayey soils. Engineering Geology, 272, 105635. https://doi.org/10.1016/j.enggeo.2020.105635
Mitchell, J. K., & Soga, K. (2018). Fundamentals of soil behavior (3rd ed.). Wiley.
Minerals. (2025). Mineralogical characterization of tropical lateritic soils. Minerals, 15(1), 22. https://doi.org/10.3390/min15010022
Olufemi, B. A., Akinwumi, I. I., & Adebayo, A. O. (2021). Optimization of waste-based soil stabilizers. Journal of Materials in Civil Engineering, 33(9), 04021255. https://doi.org/10.1061/(ASCE)MT.1943-5533.0003827
Onyelowe, K. C., Bui, Q. B., & Jalal, F. E. (2021). Clay modification mechanisms in chemically stabilized soils. Soils and Foundations, 61(5), 1230–1245. https://doi.org/10.1016/j.sandf.2021.08.006
Science of the Total Environment. (2024). Environmental performance of waste-derived construction materials. Science of the Total Environment, 912, 169014. https://doi.org/10.1016/j.scitotenv.2023.169014
Scrivener, K. L., John, V. M., & Gartner, E. M. (2018). Eco-efficient cements: Potential and challenges. Cement and Concrete Research, 114, 2–26. https://doi.org/10.1016/j.cemconres.2018.03.015
Shaqour, F. M. (2024). Role of iron oxides in lateritic soil behavior. Engineering Geology, 324, 107184. https://doi.org/10.1016/j.enggeo.2023.107184
Sharma, A. K., & Sivapullaiah, P. V. (2022). Compaction and strength behavior of stabilized soils. International Journal of Geomechanics, 22(5), 04022053. https://doi.org/10.1061/(ASCE)GM.1943-5622.0002326
Ulusoy, E., Yilmaz, K., & Erdem, T. K. (2019). Utilization of aluminum dross in soil stabilization. Construction and Building Materials, 212, 62–70. https://doi.org/10.1016/j.conbuildmat.2019.03.145
Yao, X., Zhang, Z., Zhu, H., & Chen, Y. (2020). Geopolymerization process in alkali-activated materials. Construction and Building Materials, 244, 118294. https://doi.org/10.1016/j.conbuildmat.2020.118294
Yarbasi, N., Kalkan, E., & Akbulut, S. (2017). Modification of clayey soils using industrial waste. Applied Clay Science, 146, 102–112. https://doi.org/10.1016/j.clay.2017.05.021
Zhang, T., Li, X., & Wang, Y. (2021). Alkali-activated stabilization of fine-grained soils. Construction and Building Materials, 297, 123754. https://doi.org/10.1016/j.conbuildmat.2021.123754
Zhang, Y., Chen, J., & Li, H. (2023). Sustainable reuse of aluminum dross in civil engineering applications. Journal of Cleaner Production, 389, 136064. https://doi.org/10.1016/j.jclepro.2023.136064
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