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Open AccessArticle
Residual Flexural Performance and Performance-Normalized Embodied Carbon of Recycled and Commercial Steel Fibers in Slag-Blended Concrete
by
Cansu Colak
Cansu Colak *
and
Ozkan Sengul
Ozkan Sengul
Faculty of Civil Engineering, Istanbul Technical University, Istanbul 34469, Turkey
*
Author to whom correspondence should be addressed.
J. Compos. Sci. 2025, 9(12), 656; https://doi.org/10.3390/jcs9120656 (registering DOI)
Submission received: 3 November 2025
/
Revised: 21 November 2025
/
Accepted: 24 November 2025
/
Published: 1 December 2025
Abstract
This study introduces a decision-oriented framework integrating fresh-state rheology, standardized post-cracking performance, and cradle-to-gate embodied carbon for steel-fiber-reinforced concretes incorporating recycled and commercial fibers. The motivation lies in achieving mechanical efficiency while reducing the environmental burden of cementitious composites. Mixtures were produced with water-to-binder ratios between 0.40 and 0.60, fiber dosages of 15–45 kg/m3, and 50% GGBS replacement to mitigate binder-related carbon emissions. Equal-workability comparisons were conducted at 15 kg/m3 using ICAR-based static yield stress measurements, whereas higher dosages were evaluated without rheology-based adjustment. Post-cracking performance was assessed through residual flexural strengths at CMOD = 0.5 and 2.5 mm (fR1, fR3) and CMOD-based toughness indices. Embodied performance was quantified using the embodied-carbon-per-performance (ECP) index, normalized by fR3. Results indicate that recycled fibers exhibit greater fresh-state resistance but slightly lower residual capacities under equal workability, while commercial fibers achieve competitive ECP at 15 kg/m3. Increasing fiber dosage improved toughness yet intensified the trade-off between ECP and mechanical gain. The framework highlights that optimized binder composition and fiber type selection can yield carbon-efficient, structurally resilient composite systems.
Share and Cite
MDPI and ACS Style
Colak, C.; Sengul, O.
Residual Flexural Performance and Performance-Normalized Embodied Carbon of Recycled and Commercial Steel Fibers in Slag-Blended Concrete. J. Compos. Sci. 2025, 9, 656.
https://doi.org/10.3390/jcs9120656
AMA Style
Colak C, Sengul O.
Residual Flexural Performance and Performance-Normalized Embodied Carbon of Recycled and Commercial Steel Fibers in Slag-Blended Concrete. Journal of Composites Science. 2025; 9(12):656.
https://doi.org/10.3390/jcs9120656
Chicago/Turabian Style
Colak, Cansu, and Ozkan Sengul.
2025. "Residual Flexural Performance and Performance-Normalized Embodied Carbon of Recycled and Commercial Steel Fibers in Slag-Blended Concrete" Journal of Composites Science 9, no. 12: 656.
https://doi.org/10.3390/jcs9120656
APA Style
Colak, C., & Sengul, O.
(2025). Residual Flexural Performance and Performance-Normalized Embodied Carbon of Recycled and Commercial Steel Fibers in Slag-Blended Concrete. Journal of Composites Science, 9(12), 656.
https://doi.org/10.3390/jcs9120656
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