| dc.description.abstract |
The use of concrete is rapidly increasing worldwide, primarily harming the
environment due to its primary component, cement, which accounts for roughly 8%
of global CO2 emissions. Hence, exploring sustainable alternatives is crucial. Extracted
nano-silica (NS) from rice husk ash is gaining interest as a sustainable construction
material. In this study, RHA and extracted SP and NS from RHA were characterized
comprehensively at pH 3 and pH 10 to evaluate their suitability for application in
cementitious media. By utilizing laser particle sizing, scanning electron microscopy
(SEM), X-ray diffraction (XRD), and X-ray fluorescence (XRF) techniques, the chemical
composition, physical characteristics, and microstructure of these binders were
examined. The setting time, soundness, autoclave expansion, workability,
microstructure, flexural strength, compressive strength, and durability of RHA/SP/NS
blended mortar and concrete were assessed. Setting time increased with RHA and SP
replacement but was significantly reduced with NS due to early hydration, resulting
in early strength development. RHA, SP, and NS blended mortars showed better
flexural and compressive strength than the control mix due to higher C-S-H formation.
With 2.5% RHA, 10% SP, and 5% NS replacement, maximum strength and better
durability were observed in the mortar. At a constant w/b ratio, the compressive
strengths found were 59.2 MPa, 60.8 MPa, and 56.2 MPa after 90 days of curing. RHA
increased drying shrinkage slightly. However, SP and NS reduced it and improved
sulfate resistance at later stages of the curing process. RHA increased the water
absorption rate in mortar, whereas adding SP and NS significantly decreased it. On
the other hand, in concrete, 7.5% RHA/SP/NS achieved the maximum strength (31.7
MPa, 34.1 MPa, and 33.7 MPa, respectively) and exhibited better durability
performance. By increasing the packing density of concrete and reducing porosity, the
compressive strength of RHA/SP/NS blended concrete increased significantly,
providing better chloride resistance than the control sample. The findings suggest that
RHA, SP, and NS have potential as alternative construction materials. |
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