Ballistic Resistance of Fiber-Reinforced Cement Composite: A Critical Review

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.

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Publication Details

Journal
Fibers
Published
2026-09-16
DOI
https://doi.org/10.3390/fib14090108
Primary Topic
High-Velocity Impact and Material Behavior
Type
article
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article

Ballistic Resistance of Fiber-Reinforced Cement Composite: A Critical Review

Buchit Maho, Phattharachai Pongsopha, Suksun Horpibulsuk, Suchart Limkatanyu et al.
Fibers
High-Velocity Impact and Material Behavior
article

Ballistic Resistance of Fiber-Reinforced Cement Composite: A Critical Review

Buchit Maho, Phattharachai Pongsopha, Suksun Horpibulsuk, Suchart Limkatanyu, Worathep Sae‐Long, Piti Sukontasukkul, Avirut Puttiwongrak, Thanongsak Imjai, Chayanon Hansapinyo, Prinya Chindaprasirt
article en

Abstract

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.

FibersVol. 14(9)
Burapha University (TH), Prince of Songkla University (TH), Khon Kaen University (TH), Asian Institute of Technology (TH), University of Phayao (TH), Rajamangala University of Technology Phra Nakhon (TH), The Royal College Of Anesthesiologists Of Thailand (TH), Office of the Royal Society, Chiang Mai University (TH), Suranaree University of Technology (TH), King Mongkut's University of Technology North Bangkok (TH)
Responsible consumption and production
Openalex Percentile: Top 24%
High-Velocity Impact and Material Behavior
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