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    Use of CFRP to Maintain Composite Action for Continuous Steel–Concrete Composite Girders

    Source: Journal of Composites for Construction:;2016:;Volume ( 020 ):;issue: 004
    Author:
    Alfarabi M. Sharif
    ,
    Mohammad A. Samaaneh
    ,
    Abul K. Azad
    ,
    Mohammed H. Baluch
    DOI: 10.1061/(ASCE)CC.1943-5614.0000645
    Publisher: American Society of Civil Engineers
    Abstract: The loss of composite action at the negative moment region for a continuous composite girder reduces the girder’s strength and stiffness. This paper presents an experimental investigation into the use of carbon fiber–reinforced polymer (CFRP) to maintain the composite action at the negative moment region of continuous composite girders. This is achieved by bonding CFRP sheets to the top of a concrete slab at the negative moment region. Six two-span continuous composite girders were tested. CFRP sheet thickness was varied to assess its effect on girder behavior. The girders were designed to have full composite action between the concrete slab and the steel girder. Moment capacity at the positive and negative moment regions was evaluated experimentally and theoretically. A plastic analysis was conducted to evaluate the ultimate capacity of the girders. Finite-element modeling evaluated girder performance numerically. The experimental results confirmed the effectiveness of CFRP sheets in maintaining composite action at the negative moment region and in preventing crack initiation in a concrete slab under service load. The use of CFRP improved the strength and stiffness of the continuous composite girders. The plastic analysis safely estimated the girders’ ultimate capacity. The developed finite-element model yielded satisfactory results.
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      Use of CFRP to Maintain Composite Action for Continuous Steel–Concrete Composite Girders

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    http://yetl.yabesh.ir/yetl1/handle/yetl/82637
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    contributor authorAlfarabi M. Sharif
    contributor authorMohammad A. Samaaneh
    contributor authorAbul K. Azad
    contributor authorMohammed H. Baluch
    date accessioned2017-05-08T22:33:43Z
    date available2017-05-08T22:33:43Z
    date copyrightAugust 2016
    date issued2016
    identifier other49745004.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/82637
    description abstractThe loss of composite action at the negative moment region for a continuous composite girder reduces the girder’s strength and stiffness. This paper presents an experimental investigation into the use of carbon fiber–reinforced polymer (CFRP) to maintain the composite action at the negative moment region of continuous composite girders. This is achieved by bonding CFRP sheets to the top of a concrete slab at the negative moment region. Six two-span continuous composite girders were tested. CFRP sheet thickness was varied to assess its effect on girder behavior. The girders were designed to have full composite action between the concrete slab and the steel girder. Moment capacity at the positive and negative moment regions was evaluated experimentally and theoretically. A plastic analysis was conducted to evaluate the ultimate capacity of the girders. Finite-element modeling evaluated girder performance numerically. The experimental results confirmed the effectiveness of CFRP sheets in maintaining composite action at the negative moment region and in preventing crack initiation in a concrete slab under service load. The use of CFRP improved the strength and stiffness of the continuous composite girders. The plastic analysis safely estimated the girders’ ultimate capacity. The developed finite-element model yielded satisfactory results.
    publisherAmerican Society of Civil Engineers
    titleUse of CFRP to Maintain Composite Action for Continuous Steel–Concrete Composite Girders
    typeJournal Paper
    journal volume20
    journal issue4
    journal titleJournal of Composites for Construction
    identifier doi10.1061/(ASCE)CC.1943-5614.0000645
    treeJournal of Composites for Construction:;2016:;Volume ( 020 ):;issue: 004
    contenttypeFulltext
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