Shear stress distribution of flat-plate using Finite Element Analysis

T. Viswanathan, G. Ganesh, A. Santhi
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引用次数: 5

Abstract

ABSTRACT The development of a linear numerical model of flat-plate to predict shear stress distribution around slab column connection is presented in this paper. An attempt is made to model the slab, flexural reinforcement and shear reinforcement using three dimensional solid elements. The proposed finite element model has been proved to be capable of simulating the shear behavior of slab-column connection and to be suitable for analysis of structural performance of flat plate structures. Numerical results obtained from this model have good agreement with the available results of other researcher’s numerical model with one dimensional rebar element. Keywords: Flat plate, ABAQUS, shear reinforcement, slab-column connection. 1. Introduction Flat-plate slab system is widely adopted by engineers as it provides many advantages such as reduction of floor height, more spatial planning due to no beams present. These advantages further results in reduction in material cost. In the flat plate slab-column connection is always subjected to combination of high bending moments and shear stresses, which develop a punching, shear failure. This failure is undesirable as it occurs without warning and may lead to progressive collapse of slab. Due to large tensile stresses, the potential diagonal crack in the form of truncated cone or pyramid is formed around the column. The failure surface extends from bottom of the slab at the support, diagonally upward up to the top surface. The angle of inclination with the horizontal depends on slab reinforcement. Hence, designing of flat-plate requires a special attention for both strength and ductility when punching shear being consider. The punching shear capacity of the slab-column connection is affected by the size of the column, the depth of slab, flexural reinforcement and compressive strength of slab etc. The punching shear capacity can be increased by using a larger column diameter, larger effective depth, more flexural reinforcement, higher concrete compressive strength or by shear reinforcement. Among these methods, the most effective way to enhance the slab-column connection is to use shear reinforcement at the punching shear zone (ACI 421 R-99), which is permitted by most of the building codes. The provision of punching shear reinforcement in various forms help in increasing the shear and ductility of the concrete. The various forms of shear reinforcements include stirrups, shear studs, bend up bars, shear heads (placed above the column), etc. According to ACI 318-05, the shear strength is a function of compressive strength of concrete and geometrical condition. The provision given in EC2 also includes the size effect and the effect of the flexural reinforcement ratio. Allowable shear strength of concrete with shear reinforcement is calculated as 0.125 √f
平板剪切应力的有限元分析
本文提出了一种平板线性数值模型,用于预测板-柱连接处的剪应力分布。尝试用三维实体单元对楼板、受弯钢筋和受剪钢筋进行建模。所建立的有限元模型能够较好地模拟板-柱连接的抗剪性能,适用于平板结构的结构性能分析。该模型的数值结果与已有的一维钢筋单元数值模型的结果吻合较好。关键词:平板,ABAQUS,剪力配筋,板柱连接。1. 平板楼板系统被工程师广泛采用,因为它具有许多优点,如降低楼层高度,由于没有梁,更多的空间规划。这些优点进一步降低了材料成本。在平板结构中,板柱连接经常受到高弯矩和剪应力的共同作用,从而产生冲剪破坏。这种破坏是不希望发生的,因为它没有预警,并可能导致板的逐步坍塌。由于大的拉应力,柱周围形成了截锥或金字塔形式的潜在对角裂纹。破坏面从支撑处的底板底部沿对角线向上延伸至顶面。与水平方向的倾斜角取决于楼板的配筋。因此,平板的设计在考虑冲剪时,需要特别注意强度和延性。板柱连接的冲剪承载力受柱尺寸、板深、板抗压强度和受弯配筋等因素的影响。采用更大的柱径、更大的有效深度、更多的受弯钢筋、更高的混凝土抗压强度或采用抗剪钢筋来提高冲剪承载力。在这些方法中,加强板柱连接最有效的方法是在冲剪区(ACI 421 R-99)使用剪力钢筋,这是大多数建筑规范所允许的。提供各种形式的冲剪钢筋有助于增加混凝土的剪切和延性。各种形式的抗剪钢筋包括箍筋、抗剪螺柱、弯筋、抗剪头(置于柱上方)等。根据ACI 318-05,抗剪强度是混凝土抗压强度和几何条件的函数。EC2中给出的规定还包括尺寸效应和受弯配筋率的影响。配剪力钢筋混凝土的许用抗剪强度计算为0.125√f
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