This review examines the ballistic resistance of fiber-reinforced cement composites (FRCs) and related cementitious systems for protective structures, with emphasis on projectile–target interaction, penetration and scabbing mechanisms, and the governing roles of material and structural parameters. The synthesis indicates that ballistic resistance is controlled not only by compressive strength but also by the combined effects of dynamic tensile behavior, fracture energy, crack-bridging efficiency, aggregate characteristics, target thickness, projectile characteristics, and structural configuration. Steel and hybrid fiber systems generally provide the most consistent improvements in scabbing suppression and residual integrity, while hard aggregates and multilayer hard–soft–tough arrangements enhance penetration resistance, stress-wave attenuation, and staged energy dissipation. The review also evaluates current numerical approaches, including rate-sensitive constitutive models, cohesive and continuum damage formulations, smoothed particle hydrodynamics, and data-driven methods. Several calibrated and experimentally validated simulations reproduced penetration depth and major damage trends with useful engineering agreement; however, significant challenges remain in representing multi-hit degradation, fiber-scale pull-out, fragment ejection, and interface debonding. In addition, the review highlights the limited suitability of existing ballistic standards for quasi-brittle cementitious systems and emphasizes the need for FRC-specific testing, large-scale validation, and more sustainable protective material design.
: 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,...
Strain-hardening cementitious composites (SHCCs) achieve tensile strain hardening and distributed multiple cracking through coordinated matrix cracking, fiber bridging, and interfacial stress transfer. This structured narrative review synthesizes evidence on single- and hybrid-fiber systems using a multiscale framework...
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
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
Carbon fiber-reinforced polymer (CFRP) composites are widely used in the aerospace, automotive, energy, construction, and other industries, owing to their high strength, fatigue resistance, design flexibility, light weight, corrosion resistance, and favorable thermal properties. This study developed a numerical model f...
Ting-Ting Zou, Yi Zhong, Rui Zhang et al.· International Conference on...· 0 citations
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
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