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Buffalo Creek Bridge: A case study of empirical versus traditional bridge deck design

机译:布法罗河大桥:经验与传统桥面设计的案例研究

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摘要

This paper presents a case study of the Buffalo Creek bridge structure under two conditions, one with an empirical sandwich deck referred to as "old deck design" and the other with traditional deck referred to as "new deck design". The focus of the study is to assess the performance of the empirically designed reinforced concrete bridge decks versus those designed using traditional analytical design methods and to check the adequacy of both design methods by correlating the theoretical results with field observations. For this purpose, two 3D finite element models of the old deck and new deck designs were developed together with the bridge superstructure. Both models were subjected to real life loading configurations of self weight and temperature variations. A comparison of the stresses induced in both models indicates that the stresses developed in the empirically designed concrete deck (old design) at the levels of the reinforcing mats are similar to those developed in the traditionally designed deck. The connections between the steel main girders and the concrete deck are the main constrains for deck expansion and contraction in the transverse direction, hence high tensile stresses were developed over the girders in the transverse direction. Additionally, the sharp edge of the clip angle protruding into the concrete deck as well as the top of the slope of the stay-in-place forms were identified as stress risers that contribute to the longitudinal cracking problem.
机译:本文以两种情况为例,对布法罗河大桥结构进行了案例研究,一种情况是将经验夹心甲板称为“旧甲板设计”,而另一种将传统甲板称为“新甲板设计”。该研究的重点是评估经验设计的钢筋混凝土桥面板与传统分析设计方法相比的性能,并通过将理论结果与现场观察相关联来检验两种设计方法的适当性。为此,与桥梁上部结构一起开发了旧甲板和新甲板设计的两个3D有限元模型。两种模型都经受了自重和温度变化的实际负载配置。对两个模型中引起的应力的比较表明,在经验设计的混凝土甲板(旧设计)中,在增强垫层处产生的应力与在传统设计的甲板中产生的应力相似。钢主梁与混凝土面板之间的连接是面板在横向方向上膨胀和收缩的主要限制因素,因此在横向方向上在梁上产生了高拉应力。此外,夹角的尖锐边缘伸入混凝土甲板以及固定模板坡度的顶部也被确定为是导致纵向开裂问题的应力上升点。

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  • 来源
    《Bridge structures》 |2010年第4期|p.139-153|共15页
  • 作者单位

    Departments of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV, USA;

    rnDepartments of Civil and Environmental Engineering, West Virginia University, Morgantown, WV, USA,Departments of Civil and Environmental Engi- neering, West Virginia University, Morgantown, WV 26506-6103, USA;

    rnDepartments of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV, USA;

    rnDepartments of Civil and Environmental Engineering, West Virginia University, Morgantown, WV, USA;

    rnEngineering Division, West Virginia Division of Highways, Charleston, WV, USA;

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