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http://dx.doi.org/10.12989/acc.2022.13.1.025

Properties of recycled steel fibre reinforced expanded perlite based geopolymer mortars  

Celikten, Serhat (Department of Civil Engineering, Nevsehir Haci Bektas Veli University)
Publication Information
Advances in concrete construction / v.13, no.1, 2022 , pp. 25-34 More about this Journal
Abstract
The production of geopolymer is considered as a cleaner process due to much lower CO2 emission than that from the production of Portland cement. This paper presents a study of the potential use of recycled steel fibre (RSF) coming from the recycling process of the old tires in geopolymer mortars. Ground expanded perlite (EP) is used as a source of alumino-silicate and sodium hydroxide (NaOH=5, 10, 15, and 20M) is used as alkaline medium for geopolymer synthesis. RSFs were added to the mortar mixtures in four different volume fractions (0, 0.5, 1.0, and 1.5% of the total volume of mortar). The unit weight, ultrasound pulse velocity, flexural and compressive strength of expanded perlite based geopolymer mortar (EPGM) mixtures were determined. The microstructures of selected EPGMs were examined by scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS) analyses. The optimum molarity of sodium hydroxide solution was found to be 15M for geopolymer synthesis by EP. The test results revealed that RSFs can be successfully used for fibre-reinforced geopolymer production.
Keywords
expanded perlite; geopolymer, recycled steel fibre; mechanical properties; microstructure;
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