Enhancing mechanical, durability, and microstructural performance of fly ash-based one-part geopolymer foam concretes using marine mucilage and polypropylene fibers

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Taylor & Francis Ltd

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info:eu-repo/semantics/closedAccess

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This study presents a bio-circular approach for valorizing marine mucilage (MM), an emerging marine pollutant, in sustainable one-part geopolymer foam concretes (GFCs). Fly ash (FA) was used as the primary binder, MM replaced silica sand (SS, 0-50%), and polypropylene fibers (PPF, 0-2%) were incorporated. MM-PPF synergy enhanced matrix densification: compressive strength increased from 2.46 to 5.64 MPa (approximate to 129%) and flexural strength from 0.54 to 1.43 MPa (approximate to 165%). Sorptivity decreased from 30.3 to 11.6 kg/m(2) (approximate to 62%), indicating refined pore structure, while thermal conductivity rose moderately (0.31-0.46 W/m center dot K), maintaining lightweight insulation. Durability improved markedly, with >60% strength retention at 800 degrees C, <20% loss after 50 freeze-thaw cycles, and approximate to 10% mass loss under acid attack. Microstructural analysis confirmed improved gel continuity, pore refinement, and crack-bridging mechanisms. MM-PPF-modified GFCs provide an eco-efficient, low-carbon alternative with strong potential for sustainable cement-based construction materials.

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One-Part Geopolymer Foam Concrete, Marine Mucilage, Polypropylene Fiber, Mechanical Performance, Thermal Insulation, Durability Properties

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Journal of Sustainable Cement-Based Materials

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