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Experimental and analytical investigations of concrete bridge decks with structural FRP stay-in-place forms.

机译:具有FRP结构固定形式的混凝土桥面板的实验和分析研究。

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摘要

Stay-In-Place (SIP) formwork systems are widely used for concrete slabs in industry due to their relative ease and speed of construction. Conventionally, corrugated metal sheets or precast panels are used as formwork. In recent years, the SIP formwork technique has been proposed in conjunction with Fiber Reinforced Polymer (FRP) composites. The resulting system combines the construction advantages of SIP formwork with the durability and corrosion resistance of FRP materials. Bridge decks are a particularly enticing application due to their exposure to harsh environmental conditions and the need for rapid construction to minimize traffic disruptions. This study broadly evaluates FRP SIP formwork for concrete bridge decks both experimentally and numerically. In total, 9 full scale bridge deck sections, 32 small scale decks and more than 40 auxiliary tests were conducted, including the construction and testing of a full bridge at scale. Additionally, a numerical model was developed to predict punching shear failure based on the theory of plates and shells. Experimental testing was conducted on two FRP SIP form configurations, namely flat plates with T-shape stiffeners and corrugated plates, and used a variety of different detailing and geometries. Some of the investigated parameters included the width effect of bridge deck section tests, the effect of deck span, the effect of bond at the FRP-concrete interface, the panel-to-panel splice configuration, concrete strength, and boundary condition at support, including a monolithic connection with precise girders. Results of the study include the determination of a critical aspect ratio for bridge deck sections, optimization of the panel-to-panel splice detail, and an assessment of the in-plane restraint available to interior span bridge decks. The numerical model, based on the Levy solution for loaded plates, produces a flexural response for a variety of bridge deck configurations and geometries. A failure criterion was applied to establish the punching shear capacity. The model was evaluated against experimental results and provided good correlation. It was then used to investigate a variety of FRP plate thicknesses, spans and effective widths for full scale FRP SIP formwork bridge decks.
机译:留模(SIP)模板系统因其相对容易和快速的施工而广泛用于工业混凝土板中。常规地,波纹金属板或预制板用作模板。近年来,已结合纤维增强聚合物(FRP)复合材料提出了SIP模板技术。最终的系统将SIP模板的结构优势与FRP材料的耐用性和耐腐蚀性相结合。由于桥面板暴露在恶劣的环境条件下,并且需要快速施工以最大程度地减少交通干扰,因此是一种特别诱人的应用。这项研究从实验和数值上广泛评估了混凝土桥面板的FRP SIP模板。总共进行了9个全尺寸桥梁桥面部分,32个小型甲板桥面和40多项辅助测试,包括大型桥梁的建造和测试。另外,基于板和壳的理论,开发了一个数值模型来预测冲压剪切失效。实验测试是在两种FRP SIP模板结构上进行的,即具有T形加劲肋的平板和波纹板,并使用了各种不同的细节和几何形状。研究的一些参数包括桥梁桥面截面测试的宽度效应,桥面跨度效应,FRP-混凝土界面处的粘结效应,面板对面板的拼接构型,混凝土强度以及支撑处的边界条件,包括与精确大梁的整体连接。研究结果包括确定桥面板截面的临界纵横比,优化面板到面板的拼接细节以及评估内部跨度桥面板可利用的平面约束。该数值模型基于加载板的征税解决方案,可为各种桥面构造和几何形状产生挠曲响应。应用破坏准则建立冲切剪切能力。该模型针对实验结果进行了评估,并提供了良好的相关性。然后,它被用来研究各种FRP板的厚度,跨度和有效宽度,以用于全尺寸FRP SIP模板桥面板。

著录项

  • 作者

    Nelson, Mark Stewart.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 0 p.
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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