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Influence of nano-silica and r-MgO on rheological properties, 3D printability, and mechanical properties of one-part sodium carbonate-activated slag-based mixes

dc.contributor.authorAkturk, Buesra
dc.contributor.authorErtugrul, Onur
dc.contributor.authorOzen, Omer Can
dc.contributor.authorOktay, Didem
dc.contributor.authorYazar, Tugrul
dc.date.accessioned2026-06-27T15:12:58Z
dc.date.issued2025
dc.description.abstractInterest in 3D concrete printing is growing quickly in academia and industry. Alkali-activated materials (AAMs) are a greener alternative to cement but traditional AAMs face challenges with high-viscosity alkaline solutions and energy demands. One-part AAMs, using solid activators and aluminosilicate precursors, present a promising solution. This research investigated the potential producibility of one-part sodium carbonate-activated, slag-based 3D printable mixes. The disadvantages of sodium carbonate activation were mitigated by using reactive MgO (r-MgO), obtained through low-temperature calcination, as a partial substitute for the primary precursor, slag. Additionally, nano-silica was incorporated into the mixes to improve rheological and mechanical properties as well as printability. Several mixes were developed using varying amounts of r-MgO, up to 15 %, and a small amount of nano-silica, 1 % by weight. Rheological properties, including static and dynamic yield stress and viscosity recovery, were evaluated. The printability and buildability of the mixes were experimentally assessed to determine their feasibility for 3D printing. The test results indicated that printable, buildable mixes with proper setting times and sufficient compressive strength can be obtained by substituting slag with r-MgO in specific amounts, namely 10 % and 15 % by weight. While yield stress, compressive strength, printability, and buildability improved with r-MgO substitution, setting time decreased. Furthermore, the inclusion of nano-silica significantly enhanced rheological properties, while mechanical properties showed a slight improvement in 3D-printed samples, which also enabled printable mixes with low r-MgO content (5 %). Moreover, the environmental impact of the produced mixes was found to be much lower than that of Portland-cement-based mixes. In conclusion, one-part sodium carbonate-activated, slag-based mixes present a viable and environmentally friendly alternative for 3D-printable mortar, in case of the inclusion of r-MgO.en
dc.description.sponsorshipIstanbul Bilgi University scientific research projects [AK85096]
dc.description.sponsorshipYildiz Technical University research projects [FYL-2023-5439]
dc.description.urihttps://doi.org/10.1016/j.jobe.2025.112245
dc.identifier.doi10.1016/j.jobe.2025.112245
dc.identifier.eissn2352-7102
dc.identifier.urihttps://hdl.handle.net/20.500.14981/69053
dc.identifier.volume104
dc.identifier.wos001443884200001
dc.language.isoeng
dc.publisherELSEVIER
dc.relation.ispartofJOURNAL OF BUILDING ENGINEERING
dc.subject3D printed concrete
dc.subjectr-MgO
dc.subjectNano-silica
dc.subjectSodium carbonate
dc.subjectOne-part alkali-activation
dc.subjectRheology
dc.subjectFLY-ASH MIXTURES
dc.subjectPORTLAND-CEMENT
dc.subjectCOMPRESSIVE STRENGTH
dc.subjectDIGITAL FABRICATION
dc.subjectHARDENED PROPERTIES
dc.subjectBOND STRENGTH
dc.subjectYIELD-STRESS
dc.subjectREACTIVE MGO
dc.subjectALKALI
dc.subjectCONCRETE
dc.subjectConstruction & Building Technology
dc.subjectEngineering
dc.titleInfluence of nano-silica and r-MgO on rheological properties, 3D printability, and mechanical properties of one-part sodium carbonate-activated slag-based mixes
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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