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Performance evaluation of coffee husk ash based one-part self compacting alkali activated slag concrete mixes

R. Manjunath; J. R. Pushya; K. A. Abhilash Kumar; Kiran K. Shetty
Innovative Infrastructure Solutions · Vol. 10, Issue 6 · 2025

Abstract

Alkali-activated binders are low-carbon alternatives to cement, produced by reacting an alkali activator with an alumino-silicate precursor. However, common alkaline activators like NaOH and Na 2 SiO 3 are highly corrosive, limiting their practical use. This study developed one-part alkali-activated binders from agricultural and industrial waste to address challenges posed by conventional two-part systems. Further performance evaluation of alkali activated slag mixes were evaluated using the developed solid activator. The approach supports sustainable waste management, offers an eco-friendly alternative to Portland cement, and lowers carbon emissions. Using solid alkali-activator sodium metasilicate and precursors like coffee husk ash (CHA), Ground granulated blast furnace slag, and ferrochrome slag, one-part alkali-activated self-compacting concrete (OPASC) mixes were created through Taguchi design experiments. The experimental trials of OPASC were evaluated for fresh, mechanical, microstructural, and durability properties. Results showed flowability between 700 and 765 mm, compressive strength of 50–63 MPa, flexural strength of 3.05–3.58 MPa, splitting tensile strength of 2.7–3.58 MPa, and elastic moduli of 30–32 GPa. These properties were comparable to the reference ordinary Portland cement self-compacting concrete mix, which had a compressive strength of 55 MPa, flexural strength of 4 MPa, splitting tensile strength of 2.8 MPa, and elastic modulus of 30 GPa at 28 days. The OPASC mix showed lower water absorption, high concrete quality (UPV > 4.5), and better performance at elevated temperatures. The study suggests that CHA-based alkali-activated materials can be effectively used, reducing waste and offering viable structural properties.

Bibliographic Information

JournalInnovative Infrastructure Solutions
PublisherSpringer
Publication Date2025-06-01
Publication Year2025
Volume10
Issue6
Document TypeJournal Article
Print ISSN2364-4176
eISSN2364-4184
DOI10.1007/s41062-025-02044-4

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NARA Access Coverage2016-01-01~Current
Journal Homepagehttps://www.springer.com/journal/41062
Publisher PageOpen Publisher Page
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