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    Numerical Simulations of Steel Integral Abutment Bridges under Thermal Loading

    Source: Journal of Bridge Engineering:;2016:;Volume ( 021 ):;issue: 010
    Author:
    James M. LaFave
    ,
    Joseph K. Riddle
    ,
    Matthew W. Jarrett
    ,
    Beth A. Wright
    ,
    Jeffrey S. Svatora
    ,
    Huayu An
    ,
    Larry A. Fahnestock
    DOI: 10.1061/(ASCE)BE.1943-5592.0000919
    Publisher: American Society of Civil Engineers
    Abstract: Although integral abutment bridges (IABs) can reduce construction and maintenance costs compared with conventional jointed bridges, certain aspects of their structural behavior are still not well understood. Most prior IAB research was related to substructure behavior, and as a result, most limit states that have been considered in design guidelines have been based on substructure considerations. However, integral abutment construction also affects superstructure behavior and demands, and superstructure properties directly influence substructure behavior. This paper presents numerical simulations evaluating the behavior of IABs with composite steel I-girders subjected to temperature changes consistent with seasonal fluctuations in the state of Illinois. Bridge superstructures, abutments, piers, and pile foundations were modeled to determine various structural demands imposed by these temperature changes. A suite of nonlinear bridge models is introduced in which key bridge parameters were varied, such as overall bridge length, intermediate-span length, pile size, and skew. Results indicate that effective expansion length (EEL) has a primary influence on bridge longitudinal movement under thermal loads regardless of girder, abutment, or pile design. Also, results show that superstructure girder response (elastic) and substructure pile response (inelastic) to superstructure temperature change are influenced by parameters such as EEL, pile size, skew, and the rotational restraint that the superstructure imposes on the substructure. Results presented herein suggest that superstructure geometry should be directly or indirectly considered in IAB substructure design, and that thermally induced stresses and strains should be accounted for in superstructure and substructure design.
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      Numerical Simulations of Steel Integral Abutment Bridges under Thermal Loading

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4241859
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    • Journal of Bridge Engineering

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    contributor authorJames M. LaFave
    contributor authorJoseph K. Riddle
    contributor authorMatthew W. Jarrett
    contributor authorBeth A. Wright
    contributor authorJeffrey S. Svatora
    contributor authorHuayu An
    contributor authorLarry A. Fahnestock
    date accessioned2017-12-16T09:21:52Z
    date available2017-12-16T09:21:52Z
    date issued2016
    identifier other%28ASCE%29BE.1943-5592.0000919.pdf
    identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4241859
    description abstractAlthough integral abutment bridges (IABs) can reduce construction and maintenance costs compared with conventional jointed bridges, certain aspects of their structural behavior are still not well understood. Most prior IAB research was related to substructure behavior, and as a result, most limit states that have been considered in design guidelines have been based on substructure considerations. However, integral abutment construction also affects superstructure behavior and demands, and superstructure properties directly influence substructure behavior. This paper presents numerical simulations evaluating the behavior of IABs with composite steel I-girders subjected to temperature changes consistent with seasonal fluctuations in the state of Illinois. Bridge superstructures, abutments, piers, and pile foundations were modeled to determine various structural demands imposed by these temperature changes. A suite of nonlinear bridge models is introduced in which key bridge parameters were varied, such as overall bridge length, intermediate-span length, pile size, and skew. Results indicate that effective expansion length (EEL) has a primary influence on bridge longitudinal movement under thermal loads regardless of girder, abutment, or pile design. Also, results show that superstructure girder response (elastic) and substructure pile response (inelastic) to superstructure temperature change are influenced by parameters such as EEL, pile size, skew, and the rotational restraint that the superstructure imposes on the substructure. Results presented herein suggest that superstructure geometry should be directly or indirectly considered in IAB substructure design, and that thermally induced stresses and strains should be accounted for in superstructure and substructure design.
    publisherAmerican Society of Civil Engineers
    titleNumerical Simulations of Steel Integral Abutment Bridges under Thermal Loading
    typeJournal Paper
    journal volume21
    journal issue10
    journal titleJournal of Bridge Engineering
    identifier doi10.1061/(ASCE)BE.1943-5592.0000919
    treeJournal of Bridge Engineering:;2016:;Volume ( 021 ):;issue: 010
    contenttypeFulltext
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