Skip to content
Open access

Fracture-Controlled Mechanical Behavior of Steel Fiber-Reinforced Ultra-High-Performance Concrete Incorporating Slag and Limestone Powder Under Static and Impact Loading

Sep 2026 · The Scientist · Vol 8, pp. 248 · 0 citations · 73 references

Abstract

Ultra-high-performance concrete (UHPC) is characterized by exceptional compressive strength; however, its structural performance is primarily governed by tensile behavior, fracture resistance, and energy dissipation. This study presents a comprehensive mechanical characterization of a steel fiber-reinforced UHPC incorporating a slag–limestone powder-based binder system with a low water-to-binder ratio of 0.15 and steam curing at 90 °C for 48 h. The experimental program comprised compressive strength, flexural behavior, split and direct tensile response, impact energy absorption, ultrasonic pulse velocity, and an assessment of specimen size and geometry effects. The UHPC achieved mean compressive strengths of approximately 209 and 218 MPa at 7 and 28 days, respectively, in 75 × 150 mm cylindrical specimens, indicating only modest strength development after the initial steam-curing period. Smaller cube specimens exhibited higher nominal compressive strengths, reaching approximately 221 and 227 MPa at 7 and 28 days, respectively, demonstrating a measurable but limited specimen-size effect. Flexural testing produced an average strength of 33.1 MPa and a stable post-peak response, although no strain hardening in bending was observed. Split tensile strength reached approximately 16.1 MPa, exceeding that of conventional normal-strength concrete by more than four times. Direct tensile tests demonstrated an intrinsically ductile response, with tensile strengths above 10.9 MPa and strain capacities of 0.25–0.30%, including a pronounced strain-hardening regime. Under drop-weight impact loading, specimens absorbed more than 40 J of energy without catastrophic fragmentation. Ultrasonic pulse velocity averaged 5344 m/s, indicating a dense and well-integrated microstructure. Overall, the results confirm that the investigated UHPC functions as a fracture-resistant structural composite in which tensile capacity, fiber-controlled crack bridging, and energy dissipation govern performance across multiple loading modes.

Read PDF

Similar papers

Open access Sep 2026

Effects of Steel Fiber Type and Volume Fraction on the Mechanical and Impact Performance of Ultra-High-Performance Concrete

Ultra-high-performance concrete (UHPC) exhibits exceptional strength and durability but remains inherently brittle without fiber reinforcement. This study investigates the effects of steel fiber type, geometry, surface condition, and volume fraction on the mechanical and impact performance of UHPC. Five steel fiber typ...

Roz-Ud-Din Nassar, Kadhim Alamara, A. Balachandra et al. · 0 citations
Open access 2026

Microstructural and mechanical behavior of jute fiber-reinforced high-performance concrete at elevated temperatures

ABSTRACT This study evaluates the thermal and mechanical performance of high-performance concrete (HPC) reinforced with jute fibers under elevated temperatures up to 650°C. Different fiber-reinforced mixes, including steel and polypropylene, were compared in terms of compressive strength, flexural strength, elastic mod...

Sathish Kumar Vijaya Prakash, Premsudha Rangasamy, Srimathi Nagarajan et al. · 0 citations
Open access Sep 2026

Mechanical and Durability Performance of Ultra-High-Performance Concrete Reinforced with Alkali-Resistant Glass Fibers and Textile Grid

This study investigates a hybrid composite comprising an ultra-high-performance concrete (UHPC) matrix, short alkali-resistant (AR) glass fibers, and an embedded AR-glass textile grid (GF-UHPTRC), with emphasis on measured mechanical response, elevated-temperature residual performance, and short-term sulfate-exposure b...

M. A. Malik, M. U. Javed, M. Sarkar et al. · 0 citations
Aug 2026

Fracture behavior of lightweight multiscale fiber-reinforced ultra-high-performance concrete after exposure to high temperatures

Ultra-high-performance concrete (UHPC) is prone to uncontrolled crack propagation and brittle failure, especially under fire events. Steel, polyethylene, and carbon fibers can halt thermal cracking from micro to macro levels, effectively enhancing the crack resistance and toughness of UHPC. Additionally, cenospheres ar...

Yao Zhang, Biao Zhang, J. Zhu et al. · 0 citations
Open access Sep 2026

Static and Dynamic Performance of Steel-Fiber-Reinforced Polymer-Modified Concrete: Strength, Toughness and Crack Resistance

Conventional concrete pavement materials remain limited in flexural strength, deformability, post-cracking load-carrying capacity, and impact resistance. To address these deficiencies, this study investigates the effects of polymer modification and ultrashort ultrafine steel fiber reinforcement on the static and dynami...

Zhi-Xiang Wang, Zhi-Jian Yi, Ya Li et al. · 1 citation
Review Open access 2026

Steel Fiber Reinforced Concrete: A Review of Mechanical Properties and Durability

: Steel fiber reinforced concrete (SFRC) has gained extensive attention for its superior crack resistance, toughness, and post-cracking residual capacity. This review provides a comprehensive synthesis of SFRC research covering mechanical properties, fiber–matrix interface bond, durability, structural member behavior,...

Yong Liu, Yi-Huan Wang, Wei Zhang et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.