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    Experimental Study and Multiscale Finite-Element Analysis on the Flexural Behavior of Precast Bridge Slabs with Headed Bar Joints

    Source: Journal of Bridge Engineering:;2025:;Volume ( 030 ):;issue: 005::page 04025022-1
    Author:
    Qiliang Zhao
    ,
    Lingmao Wang
    ,
    Linlin Yuan
    ,
    Weijian Zhao
    ,
    Takahiko Watanabe
    ,
    Tetsuo Kawaguchi
    ,
    Hitoshi Takeda
    DOI: 10.1061/JBENF2.BEENG-7107
    Publisher: American Society of Civil Engineers
    Abstract: To reduce the construction complexity of concrete bridge slabs, a novel-headed bar joint with high-performance fiber reinforced mortar (HPFRM) was proposed. In this study, the flexural performance of connected precast bridge slabs under different joint configurations was investigated through structural-level experiments, with a focus on the overlapping length of headed bar and the strength of the HPFRM. Four-point flexural tests were conducted considering five different parameter combinations. Furthermore, three 3D numerical simulation approaches, namely, the normal multiscale model, refined multiscale model, and normal solid model, were proposed and validated against the tests. Based on the test and numerical results, the failure mechanisms and force transmission patterns of the headed bar joint connections were analyzed. The test results indicate that higher material strength improves the flexural performance of precast bridge slabs. Given joints with the same filling material strength, the improvement of joint flexural capacity is subjected to a threshold value of overlapping length. The recommended joint width for high-strength HPFRM joints should not be <100 mm in practical design, corresponding to an overlapping length of 45.6 mm. Similarly, for medium-strength HPFRM joints, the recommended joint width should be at least 150 mm, with a corresponding overlapping length of 95 mm. Compared with the test results, all the three proposed numerical simulation methods exhibited good reliability in simulating the failure modes of the precast bridge slabs with headed bar joint connections. Moreover, the refined multiscale model exhibited higher accuracy and generalizability in simulating the interaction behavior between deformed reinforcement and the HPFRM without assuming bond–slip relationships.
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      Experimental Study and Multiscale Finite-Element Analysis on the Flexural Behavior of Precast Bridge Slabs with Headed Bar Joints

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4307126
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    • Journal of Bridge Engineering

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    contributor authorQiliang Zhao
    contributor authorLingmao Wang
    contributor authorLinlin Yuan
    contributor authorWeijian Zhao
    contributor authorTakahiko Watanabe
    contributor authorTetsuo Kawaguchi
    contributor authorHitoshi Takeda
    date accessioned2025-08-17T22:34:17Z
    date available2025-08-17T22:34:17Z
    date copyright5/1/2025 12:00:00 AM
    date issued2025
    identifier otherJBENF2.BEENG-7107.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4307126
    description abstractTo reduce the construction complexity of concrete bridge slabs, a novel-headed bar joint with high-performance fiber reinforced mortar (HPFRM) was proposed. In this study, the flexural performance of connected precast bridge slabs under different joint configurations was investigated through structural-level experiments, with a focus on the overlapping length of headed bar and the strength of the HPFRM. Four-point flexural tests were conducted considering five different parameter combinations. Furthermore, three 3D numerical simulation approaches, namely, the normal multiscale model, refined multiscale model, and normal solid model, were proposed and validated against the tests. Based on the test and numerical results, the failure mechanisms and force transmission patterns of the headed bar joint connections were analyzed. The test results indicate that higher material strength improves the flexural performance of precast bridge slabs. Given joints with the same filling material strength, the improvement of joint flexural capacity is subjected to a threshold value of overlapping length. The recommended joint width for high-strength HPFRM joints should not be <100 mm in practical design, corresponding to an overlapping length of 45.6 mm. Similarly, for medium-strength HPFRM joints, the recommended joint width should be at least 150 mm, with a corresponding overlapping length of 95 mm. Compared with the test results, all the three proposed numerical simulation methods exhibited good reliability in simulating the failure modes of the precast bridge slabs with headed bar joint connections. Moreover, the refined multiscale model exhibited higher accuracy and generalizability in simulating the interaction behavior between deformed reinforcement and the HPFRM without assuming bond–slip relationships.
    publisherAmerican Society of Civil Engineers
    titleExperimental Study and Multiscale Finite-Element Analysis on the Flexural Behavior of Precast Bridge Slabs with Headed Bar Joints
    typeJournal Article
    journal volume30
    journal issue5
    journal titleJournal of Bridge Engineering
    identifier doi10.1061/JBENF2.BEENG-7107
    journal fristpage04025022-1
    journal lastpage04025022-17
    page17
    treeJournal of Bridge Engineering:;2025:;Volume ( 030 ):;issue: 005
    contenttypeFulltext
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