Technical Papers
Aug 24, 2022

Structural Behavior of Fly Ash–Based Geopolymer for Roller-Compacted Concrete Pavement

Publication: Journal of Materials in Civil Engineering
Volume 34, Issue 11

Abstract

The environmental concerns associated with the use of portland cement prompted finding an alternative. As a possible solution to this issue, fly ash–based geopolymer concrete has been developed and implemented in roller-compacted concrete pavement. The mechanical and rheological properties of roller-compacted geopolymer concrete were analyzed, accompanied by the chemical characterization through X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), and energy dispersive X-ray spectroscopy (EDXS) of the optimized samples, which confirmed the formation of geopolymer. The research entailed creating a stepwise mix design to determine the aggregate proportion and particle-size distribution of mixed aggregate that can achieve high packing density, resulting in improved roller-compacted geopolymer concrete properties. The optimized mixture was developed using dry sodium hydroxide (NaOH) to produce roller-compacted concrete, and the mixture characteristics were analyzed in different weather conditions such as humidity and temperature. The compressive strength after 28 days was 58 MPa at ambient curing and 61 MPa at thermal curing conditions. Flexural strength and split tensile strength were 5.5 and 4.2 MPa, and the modulus of elasticity was 33.10 GPa. The designed concrete was tested in the field by filling patches on cement concrete and bituminous pavements and compacting them with a prototype roller developed to test the mutual adhesiveness of the concrete and roller.

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Data Availability Statement

Some or all data models that support the findings of this study are available from the corresponding author upon reasonable request.

Acknowledgments

The experiments were conducted at the Council of Scientific and Industrial Research-Advanced Materials and Processes Research Institute, (CSIR–AMPRI) Bhopal (MP), India.

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Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 34Issue 11November 2022

History

Received: Jun 27, 2021
Accepted: Feb 23, 2022
Published online: Aug 24, 2022
Published in print: Nov 1, 2022
Discussion open until: Jan 24, 2023

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Postgraduate Student, Dept. of Civil Engineering, Samrat Ashok Technological Institute, Vidisha, Madhya Pradesh 464001, India (corresponding author). ORCID: https://orcid.org/0000-0002-9652-8672. Email: [email protected]
Nitesh Gupta [email protected]
Ph.D. Research Scholar, Dept. of Civil Engineering, Indian Institute of Technology, Banaras Hindu Univ. (BHU), Varanasi, Uttar Pradesh 221005, India. Email: [email protected]
R. K. Chouhan [email protected]
Senior Principal Technical Officer, Center for Advanced Radiation Shielding and Geopolymeric Materials, Advanced Materials and Processes Research Institute, Bhopal, Madhya Pradesh 462026, India. Email: [email protected]
Manish Mudgal [email protected]
Senior Principal Scientist, Center for Advanced Radiation Shielding and Geopolymeric Materials, Advanced Materials and Processes Research Institute, Bhopal, Madhya Pradesh 462026, India. Email: [email protected]

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  • Interlayer Aggregates Embeddedness Index and Its Characterization for Interlayer Bonding Quality of Roller-Compacted Concrete, Journal of Materials in Civil Engineering, 10.1061/JMCEE7.MTENG-14702, 35, 10, (2023).

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