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Development, testing, and analytical modeling of fiber reinforced polymer bridge deck panels.

机译:纤维增强聚合物桥面板的开发,测试和分析建模。

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摘要

A fiber-reinforced, polyurethane foam core was developed, tested, and evaluated as a possible replacement for the costly honeycomb core that is currently used to manufacture fiber-reinforced polymer (FRP) bridge deck panels. Replacing these panels would reduce both initial production costs and construction times while also enhancing structural performance. Experimental, numerical, and analytical investigations were each conducted. Three different polyurethane foam (PU) configurations were used for the inner core during the study's first phase. These configurations consisted of a high-density PU foam (Type 1), a gridwork of thin, interconnecting, glass fiber/resin webs that formed a bidirectional gridwork in-filled with a low-density PU foam (Type 2), and a trapezoidal-shaped, low-density PU foam that utilized E-glass web layers (Type 3). Based on the experimental results of this phase, the Type 3 core was recommended to move forward to the second phase of the study, where a larger-scale version of the Type 3, namely "mid-scale panels," were tested both statically and dynamically. Analytical models and finite element analysis (FEA) were each conducted during a third phase. Analytical models were used to predict critical facesheet wrinkling that had been observed during phase two. A three-dimensional model using ABAQUS was developed to analyze each panel's behavior. A parametric study considering a wide variety of parameters was also conducted to further evaluate the behavior of the prototype panel. The fourth phase of this research investigated the performance of Type 3 panels under exposure to various environmental conditions to duplicate seasonal effects in Midwestern states. The results gathered from these four phases showed that the proposed Type 3 panel is a cost effective alternative to both honeycomb and reinforced concrete bridge decks.
机译:开发,测试和评估了纤维增强的聚氨酯泡沫内芯,以取代目前用于制造纤维增强聚合物(FRP)桥面板的昂贵蜂窝芯。更换这些面板将减少初始生产成本和建造时间,同时还可以提高结构性能。分别进行了实验,数值和分析研究。在研究的第一阶段,将三种不同的聚氨酯泡沫(PU)配置用于内芯。这些配置由高密度PU泡沫(类型1),薄的相互连接的玻璃纤维/树脂网构成,并形成双向网格,并填充有低密度PU泡沫(类型2)和梯形。形的低密度PU泡沫,使用了E玻璃纤维网层(类型3)。根据此阶段的实验结果,建议将Type 3核心推进到研究的第二阶段,在该阶段中,对Type 3的较大版本(即“中型面板”)进行静态和静态测试。动态地。在第三阶段分别进行了分析模型和有限元分析(FEA)。使用分析模型来预测在第二阶段中观察到的临界面板皱纹。开发了使用ABAQUS的三维模型来分析每个面板的行为。还进行了考虑多种参数的参数研究,以进一步评估原型面板的行为。这项研究的第四阶段研究了3型面板在各种环境条件下的性能,以复制中西部各州的季节性影响。从这四个阶段收集的结果表明,建议的Type 3面板是蜂窝和钢筋混凝土桥面板的一种经济有效的替代方案。

著录项

  • 作者

    Tuwair, Hesham R.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Civil engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 331 p.
  • 总页数 331
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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