Conventional cement concrete has difficulty simultaneously achieving relatively high strength, large deformation capacity, and satisfactory post-cracking damage resistance, which limits its further use in demanding pavement applications. This study comprehensively evaluates the strength development, deformation capacity, post-cracking load-bearing behavior, repeated-impact response, fracture performance, and crack-evolution characteristics of a dense polyacrylate-modified concrete (PMC). Under the material composition and curing conditions adopted in this study, the PMC combines relatively high flexural strength with substantially enhanced deformability: its 28 d flexural strength and ultimate flexural strain are 51.5% and 505.1% higher, respectively, than those of conventional concrete, while exhibiting more stable post-cracking load-bearing and crack-propagation behavior. The repeated-impact and fracture responses further show that the material can sustain higher levels of cumulative nominal impact-energy input and provides greater fracture resistance and damage tolerance. SEM observations reveal film-like polymer connections on the surfaces of hydration products; this local morphology is consistent with the macroscopic toughness and stable crack-propagation characteristics, providing an experimental basis for further optimization of high-strength, high-toughness polymer-modified concrete for demanding service scenarios such as heavy-duty pavements and steel bridge-deck pavements.
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.· Materials· 1 citation
This study examines the fracture and mechanical performance of hybrid fiber-reinforced high-strength concrete (HFRHSC) with different water-to-binder (W/B) ratios. Six mixtures incorporating hybrid combinations of steel, polymer, glass, and basalt fibers were investigated at W/B ratios of 0.42, 0.31, and 0.25. The sy...
P. Smarzewski, Taher A. Tawfik, Mohamed Abdellatief· International Journal of Civ...· 0 citations
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 incorp...
Roz-Ud-Din Nassar, A. Balachandra, Shah Room et al.· The Scientist· 0 citations
: 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,...
To further enhance the mechanical performance and early-age crack resistance of engineered cementitious composites (ECC), an ECC-based multiscale hybrid-fiber system was investigated. The system used carbon nanotube-modified polyethylene (M-PE) fibers as the primary reinforcement together with polypropylene (PP) and ba...
Yu-Xin Huang, Chong-Gen Pan, Dan-Na Su et al.· Journal of Composites Scienc...· 0 citations
To investigate the flexural behavior of high-strength concrete beams reinforced with a hybrid configuration of GFRP bars and high-strength steel bars, four-point bending tests were conducted on five C80 high-strength concrete beams, with the reinforcement ratios of high-strength steel bars and GFRP bars taken as the ma...
Xia Sun, Ruo-Chen Wang, Tian-Yu Shi et al.· Buildings· 0 citations
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