Early-age shrinkage cracking in concrete bridge deck pavements is a pervasive infrastructure challenge, with approximately 42% of decks developing cracks within the first week after construction. These defects raise long-term maintenance costs and weaken structural durability. This study assesses hybrid fiber-reinforced concrete, or HFRC, as an alternative to conventional reinforced concrete, using material property tests, two-dimensional digital image correlation (2D-DIC), and restrained shrinkage tests to compare crack resistance. Key findings show HFRC outperforms conventional concrete. Full-field 2D-DIC analysis revealed significant strain concentrations along the steel bars in traditional pavement layers. This suggests that the stiffness mismatch between the high-modulus steel reinforcement and the concrete matrix, coupled with internal restraint effects, may induce localized stress concentrations that guide the development of macro-cracks. Restrained shrinkage tests found traditional pavements formed more than 50% of their cracks within three days, while HFRC reduced total crack area by over 93% after 14 days, bringing it to less than 1/16 of conventional levels with notably smaller crack widths. This research identifies HFRC as a material-efficient alternative with potential durability benefits for effectively mitigating early-age cracking in bridge deck pavements. Its enhanced performance is attributed to the improved compatibility between material-scale deformation demands and system-level boundary restraints, which is interpreted to prevent restraint-induced stress concentrations from reaching the macroscopic cracking threshold.
Early-age cracking of tunnel lining concrete under adverse curing threatens long-term durability. This study integrates material-scale testing, structural-scale testing, and multiscale simulation to investigate cracking behavior and prevention strategies. Material-scale experiments on self-compacting concrete (SCC) und...
Wu Zhang, Zhen-Rui Yan, Qi-Gong Yang et al.· Buildings· 0 citations
Precast concrete manhole rings are exposed to localized tensile stresses and cracking during handling, transport, installation, and service. This study evaluates the effect of macro-synthetic polymer fibers on the crushing behavior, crack development, and failure mechanism of precast rings. Three reference rings and th...
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
Polyethylene (PE) fibers enable engineered cementitious composites (ECCs) to achieve tensile strain-hardening and multiple-cracking behavior through fiber bridging; however, the relatively large crack widths that can develop in PE fiber-reinforced high-strength ECC (HS-ECC) may limit its autogenous self-healing capabil...
Zhi-Gang Zhang, Xiang-Wen Lei, Jamal A. Abdalla et al.· Polymers· 0 citations
Steel fibers can improve crack control, post-cracking stiffness, ductility, and energy absorption of reinforced concrete beams; however, their efficient placement in critical load-resisting regions remains insufficiently clarified. This critical review synthesizes published evidence and structural-mechanics considerati...
Dat Hong Nguyen, Lam Thanh Quang Khai· Journal of Science, Technolo...· 0 citations
The corrosion of conventional steel reinforcement remains a major durability concern in reinforced concrete members exposed to chlorides, carbonation, moisture and industrial chemicals, because progressive section loss and bond deterioration can reduce stiffness, serviceability and structural reliability. Carbon fibe...
Anas Sayyed, R. Narwade, K. Nagarajan et al.· Advances in Materials· 0 citations
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