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March 30, 2026Journal of Materials in Civil Engineering2 citations

Geopolymer Stabilization of Industrial Wastes for Sustainable Pavement Base and Subbase Layers: Strength, Durability, and Environmental Assessment

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AKArindam KarmakarSPSupriya PalKBKamal Bhattacharya

Key Points

  • To evaluate the effectiveness of geopolymer stabilization using industrial wastes for sustainable pavement layers.
  • Analyzed the impact of molar concentration ratio (1, 2, 4) of NaOH to Na2SiO3 on strength and durability.
  • Conducted durability assessments including wet-dry cycles, mass loss, and UCS retention.
  • Utilized X-ray diffraction, FESEM, and EDX analyses to characterize the products formed.
  • Achieved a maximum unconfined compressive strength of 6.5 MPa at MCR=1 with a waste blend of 40% OB, 40% BOFS, and 20% GBFS.
  • Confirmed maximum mass loss of 6.38% and UCS retention of 4.71 MPa after 12 wet-dry cycles for MCR=4.
  • Observed a 28.4% reduction in CO2 emissions for 1-km highway construction.

Abstract

This study investigates the geopolymer stabilization of industrial wastes—coalmine overburden (OB), basic oxygen furnace slag (BOFS), and granulated blast furnace slag (GBFS)—as a sustainable substitute for pavement base/subbase layers. The effect of the molar concentration ratio (MCR) of NaOH to Na2SiO3 (1, 2, and 4) on strength and durability was analyzed. A blend of 40% OB, 40% BOFS, and 20% GBFS at MCR=1 achieved the highest 28-day unconfined compressive strength (UCS) of 6.5 MPa, meeting Indian Road Congress standard. Durability assessments confirmed maximum mass loss of 6.38% and UCS retention of 4.71 MPa after 12 wet–dry cycles for MCR=4, along with low water absorption (6.97%) and capillary rise (<25% in 24 h). X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), and energy-dispersive X-ray (EDX) analyses identified calcium-aluminosilicate hydrate (C-A-S-H) gel as the primary strength contributor. Toxicity tests confirmed heavy metal leaching below regulatory limits. A comparative cost and carbon footprint estimate demonstrated a 9.7% reduction in construction costs and a 28.4% decrease in CO2 emissions for constructing a 1-km highway. These findings highlight geopolymer-treated OB-BOFS-GBFS as a feasible, environment-friendly alternative to cement-based roadway materials.

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Cite This Study

Karmakar et al. (2026) studied this question.

synapsesocial.com/papers/69c9c5a4f8fdd13afe0bdacehttps://doi.org/10.1061/jmcee7.mteng-20912
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Ground-Granulated Blast-Furnace Slag-Based Geopolymer for Sustainable Stabilization of Coal Ash in Pavements: Experimental, Analytical, and Microstructural Insights2026
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