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May 16, 2026Cement and Concrete Composites0 citationsOpen Access

Innovative One-Part Geopolymerisation for Efficient Recovery of Highly Reactive Alum Sludge Waste

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ZLZehao LeiSPSara Pavia

Key Points

  • The aim is to assess the feasibility of using alum sludge in one-part geopolymers for cementitious applications.
  • Calcined alum sludge blended with ground granulated blast furnace slag (GGBS) activated with solid sodium silicate and sodium carbonate.
  • Sodium silicate modulus, Na2O/Al2O3, and SiO2/Al2O3 ratios were varied to study their effects on flowability and strength.
  • 28-day compressive strengths were measured, with systematic microstructural analyses performed.
  • The optimum activator composition achieved a compressive strength of 66.5 MPa at 28 days.
  • Mixtures activated by only sodium silicate or sodium carbonate developed little to no strength.
  • Increasing alum sludge content reduced strength but lessened sensitivity to mix-design changes.

Abstract

Alum sludge (AS), a by-product of drinking water treatment, is difficult to use in cementitious systems because of its high Al content, low reactive silica availability and associated compatibility issues. Although alum-sludge-based binders and one-part geopolymers have both been studied, the feasibility of incorporating Al-rich AS into a one-part geopolymer remains insufficiently understood. In this study, calcined AS was evaluated as a reactive precursor, blended with ground granulated blast furnace slag (GGBS) and activated with solid sodium silicate and sodium carbonate. The effects of sodium silicate modulus (Ms), Na 2 O/Al 2 O 3 , SiO 2 /Al 2 O 3 ratio and AS content on flowability, mechanical performance, and microstructure were systematically investigated. The results show that a workable and mechanically effective AS/GGBS, one-part geopolymer can be achieved when the activator composition is appropriately designed. Within the investigated range, the optimum parameters are Ms = 2.0, Na 2 O/Al 2 O 3 = 1.0 and SiO 2 /Al 2 O 3 = 2.5, which deliver a 28-day compressive strength of 66.5 MPa. Mixtures activated solely by sodium silicate or sodium carbonate developed little or no strength, whereas their combined use produced improved workability and strength, indicating complementary roles of the two solid activators. Microstructural analyses confirmed the formation of a predominantly amorphous binding matrix together with crystalline phases including gaylussite and calcite, consistent with C-(N)-A-S-H type reaction products. Increasing AS content reduced ultimate strength but decreased the sensitivity of compressive strength to mix-design variations. Overall, this study shows that strength development depends on maintaining a balance between AS-derived Al release, GGBS-derived Ca/Si dissolution, soluble silicate supply, and carbonate-induced phase formation.

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Cite This Study

Lei et al. (2026) studied this question.

synapsesocial.com/papers/6a0808afa487c87a6a40aed6https://doi.org/10.1016/j.cemconcomp.2026.106675
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