首页> 外文会议>Thomas T.C. Hsu symposium: Shear and torsion in concrete structures : At the ACI fall 2009 convention >Shear Strength of Slabs with Double-Headed Shear Studs in Radial and Orthogonal Layouts
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Shear Strength of Slabs with Double-Headed Shear Studs in Radial and Orthogonal Layouts

机译:径向和正交布置的双头剪力板的抗剪强度

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Solid slabs supported directly on columns offer elegant solutions for short span bridges. For buildings, flat slabs are becoming more and more popular. Solid slabs are easy and economical to construct, and for buildings they offer ease of mechanical installations and maximum story height. The slab thickness is primarily governed by deflection/vibration limits or punching shear. The latter may lead to a very brittle and sudden type of failure that can be avoided by increasing the slab thickness, using high-strength concrete, or providing shear reinforcement. The most effective of these is shear reinforcement because it deals directly with the localized problem of punching and it also prevents brittle failure. The main challenges of shear reinforcement are the installation and the anchorage of the shear elements. These problems are most adequately solved by using headed studs mounted on rails.rnTo investigate the effect of layout and the extent of the shear reinforcement on the punching shear resistance, six slab-column connections were tested at the University of Calgary. The tests showed that the strength of the connections and their ductility were significantly enhanced by shear stud reinforcement. They also demonstrated that the radial layout of the studrails as required by Eurocode 2 exhibited no advantage in performance over an orthogonal layout where the studrails were aligned with the orthogonal reinforcing mesh. This is the standard arrangement in North America. The latter is preferable because of the minimal interference with the non-prestressed or prestressed flexural reinforcement. In the present test series, maximum ductility was achieved by extending the shear reinforcement to 4d from the face of the column. Where the shear reinforcement was only extended to 2d from the face of the column, an increase in strength was recorded, but the mode of failure still had to be classified as brittle because the failure surface occurred outside the shear reinforced zone. Providing shear studs spaced at d/2 to a distance 2d from the column and spaced at d between 2d and 4d significantly increased the ductility of the connection. Ductile behavior is especially important forthe performance of slab-column connections of bridges and buildings in seismically active zones.
机译:直接支撑在柱子上的实心平板为短跨度桥梁提供了优雅的解决方案。对于建筑,平板越来越受欢迎。实心板易于制造且经济实惠,对于建筑物而言,它们易于机械安装并具有最大的楼层高度。板坯的厚度主要由挠度/振动极限或冲剪力决定。后者可能会导致非常脆性和突然性的破坏,可以通过增加楼板厚度,使用高强度混凝土或提供抗剪加固来避免。其中最有效的是抗剪加固,因为它直接处理了局部冲压问题,还可以防止脆性破坏。剪力增强的主要挑战是剪力元件的安装和锚固。通过使用安装在导轨上的带头螺栓可以最充分地解决这些问题。为了研究布局的影响和抗剪强度对冲压抗剪强度的影响,卡尔加里大学对六个平板-柱连接进行了测试。测试表明,抗剪螺柱增强了连接的强度及其延展性。他们还证明,欧洲规范2要求的钢轨的径向布局相对于钢轨与正交钢筋网对齐的正交布局在性能上没有优势。这是北美的标准安排。后者是优选的,因为对非预应力或预应力挠性增强件的干扰最小。在本试验系列中,通过将抗剪钢筋从柱子的表面延伸到4d,可以实现最大的延展性。当抗剪钢筋仅从柱子的表面延伸到2d时,强度得到了记录,但破坏模式仍必须归类为脆性的,因为破坏面发生在抗剪钢筋区域之外。提供与柱之间的距离为d / 2且距离d为2d且在d介于2d和4d之间的抗剪钉,可以显着提高连接的延展性。延性行为对于地震活跃区桥梁和建筑物的平板-柱连接的性能尤为重要。

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