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Shear impact resistance of nanoparticle-incorporated ultra-high-performance fiber-reinforced concrete at high strain rates

Authors
Noh, Hyeon WooKim, Dong Joo
Issue Date
May-2026
Publisher
Elsevier Ltd
Keywords
Nanoindentation; Nanoparticles; Shear resistance; Strain rate sensitivity; Ultra-high-performance fiber-reinforced concrete
Citation
Journal of Building Engineering, v.126, pp 1 - 30
Pages
30
Indexed
SCIE
SCOPUS
Journal Title
Journal of Building Engineering
Volume
126
Start Page
1
End Page
30
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/219724
DOI
10.1016/j.jobe.2026.116243
ISSN
2352-7102
2352-7102
Abstract
This study investigates the effects of incorporating nanoparticles (NPs) on the shear impact resistance of ultra-high-performance fiber-reinforced concrete (UHPFRC) containing 1.5 vol% straight steel fibers. Two NPs, nano-CaCO3 and nano-SiO2, were added at 3 and 1 wt% of cement weight, respectively. In particular, this study focuses on shear behavior at both static and high strain rates, which has been less investigated compared to compressive and tensile responses. NPs incorporation significantly improved the shear resistance of UHPFRC at both static and high strain rates. At a static strain rate (γ˙ = 6.7 × 10−4 s−1), UHPFRC incorporated NPs exhibited approximately twofold increases in average shear strain capacity and energy absorption capacity compared to the UHPFRC without NPs. NPs incorporation substantially increased strain rate sensitivity at high strain rates. As the strain rate increased from 6.7 × 10−4 to 239.5 s−1, the average shear strength, shear strain capacity, and energy absorption capacity of UHPFRC containing 3 wt% nano-CaCO3 increased from 21.6 to 38.2 MPa, 8.97% to 23.9%, and 144.82 to 488.56 MPa-%, respectively. Among the investigated NPs, nano-CaCO3 confirmed superior performance. Nanoindentation results revealed that nano-CaCO3 increased the hardness and elastic modulus of the C–S–H phase in the fiber–matrix zone, contributing to enhanced shear resistance. Overall, a consistent linkage between microstructural enhancement and macroscopic shear performance and rate sensitivity was established, and nano-CaCO3 was identified as the most effective nanoparticle for improving the shear impact resistance of UHPFRC under extreme loading conditions.
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