Ultra-high-performance fibre-reinforced concrete (UHPFRC) specimens with and without longitudinal reinforcement were experimentally tested under direct tensile loading. The variables considered were the volume fraction of fibres (1.0% and 2.0%), the type of steel fibres (straight and hooked end) and the longitudinal steel reinforcement ratio (none and 1.2%). All of the specimens were tested using a servo-controlled fatigue testing machine in displacement control mode. The changes in displacement were monitored using linear variable displacement transducers and the digital image correlation technique. The strain profiles at different loading stages were used to identify the crack evolution process. The average localised strain was found to be 0.2–0.36%, with corresponding crack widths of 0.3–0.6 mm. A uniaxial tensile stress–strain model was developed based on the test results and data from the literature. Longitudinally steel-reinforced specimens showed both stiffening and strengthening effects. Tension-stiffened specimens with 1.0% fibres failed at a higher strain due to the formation of multiple macrocracks. In the specimens with 2.0% fibres, the rebar fractured in a brittle manner due to crack localisation. It is concluded that a higher longitudinal reinforcement ratio is needed to utilise UHPFRC effectively under tension-dominant loads.
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July 2024
Research Article|
May 06 2024
Tensile characteristics of ultra-high-performance fibre-reinforced concrete with and without longitudinal steel rebars
Chandrashekhar Lakavath;
Chandrashekhar Lakavath
Fulbright Scholar, Department of Civil, Construction and Environmental Engineering, Iowa State University, Ames, IA, USA
Research Scholar, Department of Civil Engineering, Indian Institute of Technology Hyderabad, India
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Shanmugam Suriya Prakash;
Shanmugam Suriya Prakash
Professor, Department of Civil Engineering, Indian Institute of Technology Hyderabad, India (corresponding author: suriyap@ce.iith.ac.in)
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Srinivas Allena
Srinivas Allena
Assistant Professor, Department of Civil and Environmental Engineering, Cleveland State University, Cleveland, OH USA
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Publisher: Emerald Publishing
Received:
July 27 2023
Accepted:
December 28 2023
Online ISSN: 1751-763X
Print ISSN: 0024-9831
Emerald Publishing Limited: All rights reserved
2024
Magazine of Concrete Research (2024) 76 (13): 738–754.
Article history
Received:
July 27 2023
Accepted:
December 28 2023
Citation
Lakavath C, Prakash SS, Allena S (2024), "Tensile characteristics of ultra-high-performance fibre-reinforced concrete with and without longitudinal steel rebars". Magazine of Concrete Research, Vol. 76 No. 13 pp. 738–754, doi: https://doi.org/10.1680/jmacr.23.00181
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