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    Experiments on Pultruded FRP Beam-to-Column Joints: Failure Mode Analysis and Stiffness Determination

    Source: Journal of Structural Engineering:;2025:;Volume ( 151 ):;issue: 007::page 04025074-1
    Author:
    Sivaganesh Kanmani Selvaraj
    ,
    Tak-Ming Chan
    ,
    Ben Young
    DOI: 10.1061/JSENDH.STENG-13490
    Publisher: American Society of Civil Engineers
    Abstract: The design of pultruded fiber-reinforced polymer (PFRP) structures can be governed by the beam-to-column joints because they exhibit brittle behavior. The objectives of this study were to understand the load path in PFRP structural joints, improve the failure mode, and delay the brittle mode of failure by modifying the joint configuration. The components in the PFRP beam-to-column joints were made from E-glass pultruded structural shapes. Ten beam-to-column joint tests were carried out, including parameters such as three different end distances (e1), cleat thicknesses (ta), and additional T–stiffeners. The conventional beam-to-column joints failed in a brittle mode, with cracks initiated at flange cleats followed by progressive stiffness reduction leading to ultimate failure. The analysis using strain data confirmed that there is a need for an additional load transfer component in the top flange to delay the first brittle failure. The use of T-stiffeners significantly increased the initial stiffness of the beam-to-column joint and delayed the first failure. The overall rotational stiffness of the PFRP beam-to-column joint was determined using the joint component method in the Eurocode. It is shown that the Eurocode method is conservative for connection components with higher end distances. The appropriateness of the stiffness prediction method in the Eurocode was demonstrated with a design example. Since the introduction of PFRP in construction, it has gained traction among industries and researchers to further enhance it for various applications. However, there is an inconsistency in the design standards of PFRP structures. This paper demonstrates a simple method to develop a connection stiffener to accommodate the complicated load transfer and improve the beam–column joint structural performance by (1) increasing the initial stiffness, and (2) delaying the first failure. It also demonstrates how to use the traditional joint component method of Eurocode to calculate the initial stiffness of the PFRP beam–column joint. Several research directions are possible from this paper, and the conclusions drawn can be added to the prestandards.
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      Experiments on Pultruded FRP Beam-to-Column Joints: Failure Mode Analysis and Stiffness Determination

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4306675
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    contributor authorSivaganesh Kanmani Selvaraj
    contributor authorTak-Ming Chan
    contributor authorBen Young
    date accessioned2025-08-17T22:15:31Z
    date available2025-08-17T22:15:31Z
    date copyright7/1/2025 12:00:00 AM
    date issued2025
    identifier otherJSENDH.STENG-13490.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4306675
    description abstractThe design of pultruded fiber-reinforced polymer (PFRP) structures can be governed by the beam-to-column joints because they exhibit brittle behavior. The objectives of this study were to understand the load path in PFRP structural joints, improve the failure mode, and delay the brittle mode of failure by modifying the joint configuration. The components in the PFRP beam-to-column joints were made from E-glass pultruded structural shapes. Ten beam-to-column joint tests were carried out, including parameters such as three different end distances (e1), cleat thicknesses (ta), and additional T–stiffeners. The conventional beam-to-column joints failed in a brittle mode, with cracks initiated at flange cleats followed by progressive stiffness reduction leading to ultimate failure. The analysis using strain data confirmed that there is a need for an additional load transfer component in the top flange to delay the first brittle failure. The use of T-stiffeners significantly increased the initial stiffness of the beam-to-column joint and delayed the first failure. The overall rotational stiffness of the PFRP beam-to-column joint was determined using the joint component method in the Eurocode. It is shown that the Eurocode method is conservative for connection components with higher end distances. The appropriateness of the stiffness prediction method in the Eurocode was demonstrated with a design example. Since the introduction of PFRP in construction, it has gained traction among industries and researchers to further enhance it for various applications. However, there is an inconsistency in the design standards of PFRP structures. This paper demonstrates a simple method to develop a connection stiffener to accommodate the complicated load transfer and improve the beam–column joint structural performance by (1) increasing the initial stiffness, and (2) delaying the first failure. It also demonstrates how to use the traditional joint component method of Eurocode to calculate the initial stiffness of the PFRP beam–column joint. Several research directions are possible from this paper, and the conclusions drawn can be added to the prestandards.
    publisherAmerican Society of Civil Engineers
    titleExperiments on Pultruded FRP Beam-to-Column Joints: Failure Mode Analysis and Stiffness Determination
    typeJournal Article
    journal volume151
    journal issue7
    journal titleJournal of Structural Engineering
    identifier doi10.1061/JSENDH.STENG-13490
    journal fristpage04025074-1
    journal lastpage04025074-17
    page17
    treeJournal of Structural Engineering:;2025:;Volume ( 151 ):;issue: 007
    contenttypeFulltext
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