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Experimental and analytical evaluation of all-composite highway bridge deck

机译:全复合公路桥面板的试验与分析评价

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This paper presents a summary of the results of both the experimental and the numerical studies conducted on evaluating the structural behavior of all-composite hybrid bridge deck. The carbon/fiberglass reinforced-polymeric deck was designed to replace existing low-profile welded steel gratings that is deteriorating due to high fatigue loadings on the Schuyler Heim Bridge in Long Beach, California. In this study, a total of nine tests, both small- and full-scale, were conducted. The experimental test results indicated that the composite bridge deck has exceeded both the predicted design and ultimate capacities. The span-to-deflection ratio at the mid-span was L/738 based on a span length of 48" (1.22 m). This deflection range is satisfactory for the majority of highway bridges decking systems with other materials. The average safety factor (SF) of the composite deck design was 6. In all tests, the ultimate failure was initiated either by a punching shear under the loading steel plate, or/and by the delamination of the curved portion of the drop sandwich panel. The latter local failure mode is attributed to the high radial stress components generated at the tension side of the deck. In modeling the performance of the composite deck, the GENEA progressive failure analysis numerical code was used to perform virtual testing of the composite decks under both quasi-static and fatigue loading conditions.
机译:本文概述了评估全复合材料混合桥面结构性能的实验和数值研究的结果。碳纤维/玻璃纤维增​​强聚合物甲板的设计旨在替代现有的薄型焊接钢格栅,该格栅由于加利福尼亚长滩的Schuyler Heim桥上的高疲劳载荷而恶化。在这项研究中,总共进行了九项测试,包括小型和全面测试。实验测试结果表明,复合桥面已经超过了预期的设计和极限承载力。基于48英寸(1.22 m)的跨度,中跨的跨度/挠度比为L / 738。对于大多数使用其他材料的公路桥梁铺面系统,该挠度范围是令人满意的。平均安全系数复合甲板设计的最大屈服强度(SF)为6。在所有测试中,最终破坏是由加载钢板下的冲剪或/和吊夹层板弯曲部分的分层引起的。破坏模式归因于甲板张拉侧产生的高径向应力分量,在对复合甲板的性能进行建模时,采用GENEA渐进式破坏分析数字代码对复合甲板在两种准静态下进行虚拟测试。和疲劳负荷条件。

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