Iron slag substitution in soil-based geopolymers: a comparative study with coal fly ash for non-load bearing applications

dc.contributor.authorPiyasena, RKNP
dc.contributor.authorFarha, MFF
dc.contributor.authorHewage, IS
dc.contributor.authorYoung, SM
dc.contributor.authorHalwatura, RU
dc.contributor.editorWaidyasekara, KGAS
dc.contributor.editorJayasena, HS
dc.contributor.editorChandanie, H
dc.contributor.editorTennakoon, GA
dc.date.accessioned2026-09-28T09:13:55Z
dc.date.issued2026
dc.description.abstractThe production of traditional Ordinary Portland Cement (OPC) drives significant greenhouse gas emissions, necessitating a shift toward sustainable, low-carbon building materials. This study investigates the development of geopolymerized mud concrete (GMC) by valorizing two industrial by-products—coal fly ash (CFA) and iron slag (IS)—as primary aluminosilicate precursors. The research aimed to establish baseline parameters for a reference CFA-based GMC, optimize an IS-substituted alternative, and evaluate its comparative feasibility. Microstructural characterization confirmed both materials possess essential glass-forming oxides. While CFA relies on abundant silica and alumina to develop robust aluminosilicate networks, IS drives binder formation through complex Fe-A-S-H and C-A-S-H gels. Utilizing an alkaline activator comprising 10M sodium hydroxide and 2% sodium chloride, the methodology was included in two phases. First, optimal thermal curing conditions were established for the 20% CFA reference. Subsequently, to maximize mechanical performance, IS substitution levels (10% to 40%), curing temperatures (ambient to 100 °C), and durations (6 to 24 hours) were systematically optimized through 7-, 14-, and 28-day compressive strength testing. The benchmark CFA mix (cured at 100 °C for 6 hours) achieved a peak 28-day compressive strength of 3.241 MPa. Conversely, the optimized IS matrix (30% IS, cured at 60 °C for 24 hours) attained 1.601 MPa. Although yielding approximately 49% of the CFA baseline capacity, the 1.601 MPa IS-based geopolymer satisfies requirements for non-load-bearing masonry. Ultimately, this study demonstrates that IS is a resilient, low-cost, and eco-friendly precursor alternative that advances circular economy principles, particularly in regions lacking accessible CFA reserves.
dc.identifier.citationPiyasena, R.K.N.P., Farha, M.F.F., Hewage, I.S., Young, S.M. & Halwatura, R.U. (2026). Iron slag substitution in soil-based geopolymers: a comparative study with coal fly ash for non-load bearing applications. In K.G.A.S. Waidyasekara, H.S. Jayasena, P.L.I. Wimalaratne, & G.A. Tennakoon (Eds.), World Construction Symposium – 2026 : 14th World Construction Symposium (pp. 1022-1036). Department of Building Economics, University https://doi.org/10.31705/WCS.2026.75
dc.identifier.conferenceWorld Construction Symposium - 2026
dc.identifier.departmentDepartment of Building Economics
dc.identifier.doihttps://doi.org/10.31705/WCS.2026.75
dc.identifier.emailnethmi97praba@gmail.com
dc.identifier.emailfarhafareed2000@gmail.com
dc.identifier.emailiresharesearch1@gmail.com
dc.identifier.emailsansfica@et.cmb.ac.lk
dc.identifier.emailrangikauh@gmail.com
dc.identifier.facultyArchitecture
dc.identifier.issn2362-0919
dc.identifier.pgnospp. 1022-1036
dc.identifier.placeColombo
dc.identifier.proceeding14th World Construction Symposium - 2026
dc.identifier.urihttps://dl.lib.uom.lk/handle/123/25605
dc.language.isoen
dc.publisherDepartment of Building Economics
dc.subjectALKALINE ACTIVATION
dc.subjectCOAL FLY ASH
dc.subjectCOMPRESSIVE STRENGTH
dc.subjectGEOPOLYMERIZED MUD CONCRETE
dc.subjectIRON SLAG VALORISATION.
dc.titleIron slag substitution in soil-based geopolymers: a comparative study with coal fly ash for non-load bearing applications
dc.typeConference-Full-text

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