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March 4, 2026Proceedings of the Institution of Civil Engineers - Engineering Sustainability0 citations

Comparative study of NFC with different coarse aggregate sizes by Taguchi grey method

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TSTarunbir SinghSSShruti SharmaRSRafat Siddique

Key Points

  • The aim is to assess the effects of coarse aggregate sizes on the performance of no-fines concrete.
  • Investigation of four aggregate sizes: 4.75, 6.3, 8, and 9.5 mm.
  • Evaluation of mechanical and permeation properties of no-fines concrete.
  • Optimisation using Taguchi grey relational analysis.
  • NFC with 4.75 mm aggregate showed the best performance across all curing periods.
  • Maximum compressive strength of 10.77 MPa achieved at 365 days with 4.75 mm aggregate.
  • Strength improvements: 15.18% in compressive strength, 17.33% in split tensile strength, and 16.56% in flexural strength compared to NFC-9.5.
  • All permeability and porosity values remained within acceptable limits.

Abstract

No-fines concrete (NFC) is increasingly recognised for its effectiveness in urban drainage and environmental sustainability by reducing runoff and avoiding the use of river sand. This study investigates the influence of using different sizes of coarse aggregate of 4.75, 6.3, 8, and 9.5 mm on the mechanical and permeation properties of NFC. Results indicate that NFC made with a smaller-sized 4.75 mm aggregate size exhibited the highest performance across all curing periods. The optimised outcome, identified through Taguchi grey relational analysis, was achieved with 4.75 mm aggregate and 327 days of curing, which delivered the most favourable balance of strength and permeability. At 365 days, NFC-4.75 attained a maximum compressive strength of 10.77 MPa, representing a 15.18% improvement over NFC-9.5, while split tensile and flexural strengths increased by 17.33% and 16.56%, respectively. Although smaller aggregates slightly reduced permeability and porosity, all values remained within American Concrete Institute limits, confirming their suitability for drainage applications. These findings demonstrate that smaller aggregate sizes enhance both strength and durability without compromising essential water flow properties, supporting their adoption in sustainable pavement infrastructure for low- to medium-traffic applications.

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Cite This Study

Singh et al. (2026) studied this question.

synapsesocial.com/papers/69a7ccf7d48f933b5eed8f69https://doi.org/10.1680/jensu.25.00106
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