Enhancing structural robustness of segmental bridge joints via crossing reinforcement: experimental and analytical study

Joints in precast concrete segmental bridges (PCSBs) are prone to brittle failure because of reinforcement discontinuity. To enhance structural robustness and seismic resilience, this study proposes a ductile reinforced joint using continuous longitudinal reinforcement crossing the joint interface. Direct shear tests were conducted to compare the proposed joint with a traditional concrete key, with emphasis on reinforcement ratio and bonding condition. The results showed that the reinforced joint with a 0.7% reinforcement ratio achieved 1.65 times the ultimate shear capacity and a 16.97-fold increase in deformation capacity relative to the conventional key. Increasing the reinforcement ratio enhanced shear strength and restrained joint opening, although the improvement diminished beyond 0.25%. Epoxy bonding increased the ultimate capacity by 37% but changed the failure mode from ductile deformation to brittle fracture. Based on the observed load-transfer mechanisms, a Dual-Phase Analytical Model was developed to describe the sequential activation of interfacial adhesion, friction, and dowel action. The model reproduced the experimental results with a mean absolute error of less than 5%, demonstrating its potential for evaluating the shear capacity and robustness of reinforced segmental bridge joints.

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Publication Details

Journal
Structure and Infrastructure Engineering
Published
2026-09-24
DOI
https://doi.org/10.1080/15732479.2026.2734881
Primary Topic
Structural Behavior of Reinforced Concrete
Type
article
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Enhancing structural robustness of segmental bridge joints via crossing reinforcement: experimental and analytical study

Yu Zou, Yang Liu, Jiajia Chen, Dong Xu et al.
Structure and Infrastructure Engineering
Structural Behavior of Reinforced Concrete
article

Enhancing structural robustness of segmental bridge joints via crossing reinforcement: experimental and analytical study

Yu Zou, Yang Liu, Jiajia Chen, Dong Xu, Yanfeng Ding
article en

Abstract

Joints in precast concrete segmental bridges (PCSBs) are prone to brittle failure because of reinforcement discontinuity. To enhance structural robustness and seismic resilience, this study proposes a ductile reinforced joint using continuous longitudinal reinforcement crossing the joint interface. Direct shear tests were conducted to compare the proposed joint with a traditional concrete key, with emphasis on reinforcement ratio and bonding condition. The results showed that the reinforced joint with a 0.7% reinforcement ratio achieved 1.65 times the ultimate shear capacity and a 16.97-fold increase in deformation capacity relative to the conventional key. Increasing the reinforcement ratio enhanced shear strength and restrained joint opening, although the improvement diminished beyond 0.25%. Epoxy bonding increased the ultimate capacity by 37% but changed the failure mode from ductile deformation to brittle fracture. Based on the observed load-transfer mechanisms, a Dual-Phase Analytical Model was developed to describe the sequential activation of interfacial adhesion, friction, and dowel action. The model reproduced the experimental results with a mean absolute error of less than 5%, demonstrating its potential for evaluating the shear capacity and robustness of reinforced segmental bridge joints.

Structure and Infrastructure Engineering
Xihua University (CN), Tongji University (CN), CCCC Highway Consultants (China) (CN), China Railway Construction Corporation (China) (CN), China Railway Group (China) (CN)
Sustainable cities and communities
Openalex Percentile: Top 15%
Structural Behavior of Reinforced Concrete
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Enhancing structural robustness of segmental bridge joints via crossing reinforcement: experimental and analytical study — Yu Zou, Yang Liu, et al. · Structure and Infrastructure Engineering (2026) | TGRS Research Map | TGRS