2026· E3S Web of Conferences· Vol 730, pp. 04007· 0 citations· 28 references
Abstract
The deep soil mixing (DSM) technique has been extensively adopted worldwide for soft ground improvement due to its effectiveness in reducing settlement, enhancing the stability of embankments over soft soils, and improving earthquake resilience. However, the conventional use of ordinary Portland cement (OPC) as a binder contributes substantially to carbon emissions. To address this environmental concern, this study investigates the potential of a sustainable industrial waste-based geopolymer binder composed of ground granulated blast furnace slag (GGBS) and dolomite, activated with sodium hydroxide (NaOH) and liquid sodium silicate (Na2SiO3), as a replacement for OPC in DSM columns, by conducting unconfined compressive strength analyses. Moreover, a series of laboratory model tests was conducted on embankments supported by groups of end-bearing geopolymer-stabilized soil columns (GPSCs) installed in very soft clay to simulate traffic loading. The test results were further validated through finite element analyses using PLAXIS 3D. The optimum mix, corresponding to a NaOH concentration of 8 M, NaOH: Na₂SiO₃ ratio of 25:75, liquid-to-precursor ratio of 1, and GGBS-to-dolomite (S:D) ratio of 16:4 (precursor/kaolin clay = 20%), achieved an unconfined compressive strength (UCS) of 1.47 MPa. The geopolymer-treated soft soil with an S:D ratio of 16:4 exhibited 26.30%, 32.59%, and 38.35% higher strength than the OPC20 specimens at 7, 14, and 28 days of curing, respectively. It was also found that the incorporation of end-bearing GPSCs in soft soil beds improved the stiffness and ultimate bearing capacity of the composite soft ground by 246.92% to 418.8% for area replacement ratios of 12.7%, 17%, and 21.2%. The finite element outcomes showed trends similar to the laboratory observations, validating the effectiveness of geopolymer-based DSM columns as a sustainable and high-performance solution for soft soil improvement.
Construction on very soft peaty clay remains a major geotechnical challenge due to its high compressibility and low-bearing capacity. The deep mixing method (DMM) is widely adopted for in situ stabilization using cement; however, environmental concerns associated with cement production have driven the search for sustai...
Ashvitha Yoganathan, Nadeej H. Priyankara, Yuguo Yu et al.· Buildings· 0 citations
Deep soil mixing (DSM) is a proven in situ ground improvement technique conventionally employing cement/lime as hydraulic binders. Escalating concerns regarding greenhouse gas emissions and chemical durability of these materials have prompted the exploration of sustainable alternatives, notably supplementary cementitio...
Deepesh Bansal, Kai Yao, Zhanyong Yao et al.· Low-carbon Materials and Gre...· 0 citations
This article presents laboratory experiments examining the potential benefits of the synergistic effects of ground granulated blast furnace slag (GGBS) and metakaolin (MK) on lime (L) stabilisation of synthetic sulfate-bearing soil. The different soil–binder mixtures considered in this study were prepared by partially...
Mansour Ebailila, K. Ehwailat, J. Oti et al.· Buildings· 0 citations
Lean clay soils are considered among the most problematic soil types in civil engineering due to their low shear strength and high compressibility, which necessitate remediation to limit post-construction settlement and ensure adequate bearing capacity. Chemical stabilization is widely adopted for improving such weak g...
Shahad Fadhil Abass, Zaid H. Majeed· Research on Engineering Stru...· 0 citations
The reuse of steelmaking slags in road engineering requires an integrated evaluation of their geotechnical and geoenvironmental performance under real exposure conditions, particularly because of the high alkalinity commonly associated with these materials. This study investigates a slag–soil mixture composed, by dry m...
Denise Souza Gotardo Schneider, P. J. Pires, Marcos Vinicius Nogueira Lavagnoli Pereira et al.· Geotechnical and Geological...· 0 citations
This paper examines how stabilizing road subgrade soils with ground granulated blast furnace slag (GGBFS) and alkali-activated solution (AAS) influences both rigid pavement layer thicknesses and initial investment expenditures. For this investigation, bentonite (BT) samples representing the subgrade soil were blended w...
Bahadır Karabaş, A. Uzer, N. Akbulut et al.· Black Sea Journal of Enginee...· 0 citations
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