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Experimental validation of optimized ultra-high-performance concrete shear key shape for precast pre-stressed adjacent box girder bridges

机译:预制预应力邻近箱梁桥优化超高性能混凝土剪力键形状的试验验证

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Recently, ultra-high-performance concrete (UHPC) material has been adopted as a grout material to fill connections between adjacent girders. Research to date has showed that using UHPC in the shear key connections of bridges improves the bridge superstructure performance. However, shear key configuration used in the most bridges are custom-designed and do not follow any specific design code. In a previous study by the authors, an optimized shape of the UHPC shear key (OPT-UHPC) was introduced in attempt to enhance load transfer and increase ultimate strength capacity. The optimization was conducted using three 3D finite element models simulating direct shear, flexural, and direct tension tests. The objective of the present study is to experimentally measure the performance and ultimate load capacity of the OPT-UHPC shear key by placing it between two high strength concrete (HSC) components and subjecting to direct shear, direct tension, and flexural tests. These results are then compared to the modeling predictions from the previous study. Two 45 degrees-rectangular rosette strain gauges were placed on the surface of UHPC shear key and HSC components under direct shear load to obtain the strain in the shear key and the adjacent HSC components. The test results showed the OPT-UHPC design has an ultimate load capacity 32% larger than the FHWA-UHPC shear key, even though the cross-sectional areas are approximately equal, 19677 mm(2) for FHWA-UHPC and 20161 mm(2) for OPT-UHPC, a difference of about 2.5%. Also, the experimental results indicate the OPT-UHPC shear key enhanced the strain distribution between the concrete components and as result improved the load transfer. Thus, the load transfer mechanism is substantially influenced by the shear key configuration. (C) 2018 Elsevier Ltd. All rights reserved.
机译:近来,超高性能混凝土(UHPC)材料已被用作灌浆材料,以填充相邻大梁之间的连接。迄今为止的研究表明,在桥梁的剪力键连接中使用UHPC可改善桥梁的上部结构性能。但是,大多数桥梁中使用的剪切键配置是定制设计的,并不遵循任何特定的设计规范。在作者的先前研究中,引入了UHPC剪切键(OPT-UHPC)的优化形状,以试图增强载荷传递并增加极限强度。使用三个3D有限元模型进行了优化,这些模型模拟了直接剪切,弯曲和直接拉伸测试。本研究的目的是通过将OPT-UHPC剪切键放置在两个高强度混凝土(HSC)组件之间并进行直接剪切,直接拉伸和弯曲试验,以实验方式测量其性能和极限承载能力。然后将这些结果与先前研究的建模预测进行比较。将两个45度矩形玫瑰形应变仪放在直接剪切载荷下的UHPC剪切键和HSC组件的表面上,以获取剪切键和相邻的HSC组件中的应变。测试结果表明,即使横截面面积大致相等,OPT-UHPC设计的极限载荷容量也比FHWA-UHPC剪切键大32%,FHWA-UHPC为19677 mm(2),20161 mm(2 )对于OPT-UHPC,相差约2.5%。实验结果还表明,OPT-UHPC剪切键增强了混凝土构件之间的应变分布,从而改善了荷载传递。因此,载荷传递机构基本上受到剪切键构造的影响。 (C)2018 Elsevier Ltd.保留所有权利。

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