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Effects of the shear lag on longitudinal strain and flexural stiffness of flanged RC structural walls

机译:剪力滞后对带凸缘RC结构墙体纵向应变和抗弯刚度的影响

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The shear lag effect is a commonly reported observation in tests on flanged reinforced concrete (RC) structural walls. This effect is conventionally ignored but more evidence has shown that calculation and analyses ignoring this effect could significantly overestimate flexure strength and stiffness. Existing research indicates that well distributed diagonal cracks exist in the flange of the flanged RC walls with the shear lag effect and the effect should be calculated based on shear stiffness of the cracked concrete. A truss model was proposed but the model can only consider the effect at the bottom sections of cantilever flanged walls loaded at the top which therefore precludes its application in the design of flanged RC structural walls. This paper presents an improved truss analogy for calculating the shear lag effect for flanged section at any height of RC walls with any lateral load distributions. Predictions of the proposed method are compared with available experimental data and finite element (FE) results. The method is then applied to improve the fibre beam-column element models to generate a new prediction model which was found to predict to be able to accurately predict the flexure stiffness of RC walls.
机译:剪力滞效应是在法兰式钢筋混凝土(RC)结构墙的测试中通常报告的观察结果。传统上忽略了这种影响,但是更多证据表明,忽略这种影响的计算和分析可能会大大高估弯曲强度和刚度。现有的研究表明,带法兰的RC墙的法兰中存在分布均匀的斜裂纹,具有剪力滞后效应,应根据开裂混凝土的抗剪刚度来计算该效应。虽然提出了桁架模型,但该模型只能考虑在顶部加载的悬臂式法兰墙的底部区域的影响,因此无法将其应用于带法兰的RC结构墙的设计中。本文提出了一种改进的桁架类比,用于计算在任意横向荷载分布下任意高度的RC墙的翼缘截面的剪力滞后效应。将该方法的预测结果与可用的实验数据和有限元(FE)结果进行了比较。然后将该方法应用于改进纤维束-柱单元模型以生成新的预测模型,发现该预测模型预测能够准确预测RC墙的弯曲刚度。

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