Dynamic response of ultra-high performance concrete beams with high strength steel bars under impact load

To systematically investigate the impact resistance of ultra-high performance concrete (UHPC) beams reinforced with high-strength steel bars, this study considers three key parameters: longitudinal reinforcement ratio (0.77%, 1.15%, 1.53%), steel fiber volume fraction (1%, 2%, 3%), and water-binder ratio (0.16, 0.18, 0.20). Drop-weight impact tests (impact mass 580 kg, drop height 1.8 m) combined with ABAQUS finite element numerical simulations were conducted to analyze the failure mode, impact force time-history, displacement time-history, strain development in steel bars and concrete, and energy dissipation capacity. A simplified prediction formula for peak displacement and residual displacement was also proposed based on the principle of energy conservation. The main findings are: (1) Rather than prescribing a fixed minimum reinforcement ratio, the design should treat the longitudinal reinforcement ratio as a ductility-control variable coupled with steel fiber content and water-binder ratio. (2) The optimal steel fiber volume fraction is around 2%; when increased to 3%, fiber agglomeration occurs, leading to a decrease in the secondary peak force by 11.3% and a drop in the energy dissipation ratio from 73.2% to 63.0%. (3) A water-binder ratio of 0.18 provides the best overall impact performance, with the smallest crack width. (4) The synergy between high-strength steel bars and UHPC is significantly better than that of ordinary steel bars, with an increase in platform force of about 25% and a reduction in peak displacement of more than 30%. (5) A higher energy dissipation ratio does not necessarily indicate better impact resistance; it must be evaluated together with the failure mode. Based on these conclusions, engineering design recommendations for impact resistance are proposed, which can serve as a reference for code revisions.

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Publication Details

Journal
Structures
Published
2026-09-15
DOI
https://doi.org/10.1016/j.istruc.2026.113028
Primary Topic
Innovative concrete reinforcement materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic response of ultra-high performance concrete beams with high strength steel bars under impact load

Zhiquan Xing, Weiwei Zhang, Zezhou Su, Hiroshi Yoshiyama et al.
Structures
Innovative concrete reinforcement materials
article

Dynamic response of ultra-high performance concrete beams with high strength steel bars under impact load

Zhiquan Xing, Weiwei Zhang, Zezhou Su, Hiroshi Yoshiyama, Yan-Gang Zhao, Yu Chen
article en

Abstract

To systematically investigate the impact resistance of ultra-high performance concrete (UHPC) beams reinforced with high-strength steel bars, this study considers three key parameters: longitudinal reinforcement ratio (0.77%, 1.15%, 1.53%), steel fiber volume fraction (1%, 2%, 3%), and water-binder ratio (0.16, 0.18, 0.20). Drop-weight impact tests (impact mass 580 kg, drop height 1.8 m) combined with ABAQUS finite element numerical simulations were conducted to analyze the failure mode, impact force time-history, displacement time-history, strain development in steel bars and concrete, and energy dissipation capacity. A simplified prediction formula for peak displacement and residual displacement was also proposed based on the principle of energy conservation. The main findings are: (1) Rather than prescribing a fixed minimum reinforcement ratio, the design should treat the longitudinal reinforcement ratio as a ductility-control variable coupled with steel fiber content and water-binder ratio. (2) The optimal steel fiber volume fraction is around 2%; when increased to 3%, fiber agglomeration occurs, leading to a decrease in the secondary peak force by 11.3% and a drop in the energy dissipation ratio from 73.2% to 63.0%. (3) A water-binder ratio of 0.18 provides the best overall impact performance, with the smallest crack width. (4) The synergy between high-strength steel bars and UHPC is significantly better than that of ordinary steel bars, with an increase in platform force of about 25% and a reduction in peak displacement of more than 30%. (5) A higher energy dissipation ratio does not necessarily indicate better impact resistance; it must be evaluated together with the failure mode. Based on these conclusions, engineering design recommendations for impact resistance are proposed, which can serve as a reference for code revisions.

StructuresVol. 93
Beijing University of Technology (CN), Nikki-Universal (Japan) (JP), Fuzhou University (CN)
Beijing University of Technology
Affordable and clean energy
Openalex Percentile: Top 17%
Innovative concrete reinforcement materials
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