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A model for the simultaneous prediction of the flexural and shear deflections of statically determinate and indeterminate reinforced concrete structures

机译:同时预测静定和不确定钢筋混凝土结构的挠度和剪切挠度的模型

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摘要

The deformability of the major part of reinforced concrete (RC) structures is the result of the flexural and shear deformations mainly caused by bending and shear diagonal cracking, respectively. However, the evaluation of the shear deformation contribution is relatively difficult due to the complexities involving the shear behavior of cracked RC elements. These complexities are even more complicated when structures are statically indeterminate, since the external and internal forces cannot be determined from direct application of the equilibrium equations. To address these issues, this study aims to develop a novel simplified analytical model based on the flexibility (force) method to predict the deflections of statically indeterminate RC structures up to their failure, which can be in bending or in shear. This analytical model considers the influence of flexural cracks on the shear stiffness degradation of an RC structure after concrete cracking initiation, and has a format adjusted for design practice. The good predictive performance of the analytical model is demonstrated by simulating experimental tests with RC elements where shear deformation has different level of contribution for the total deflection registered in these tests.
机译:钢筋混凝土(RC)结构主体的可变形性是弯曲和剪切变形的结果,这些变形分别是由弯曲和剪切对角线裂缝引起的。然而,由于涉及破裂的RC元件的剪切行为的复杂性,所以剪切变形贡献的评估相对困难。当结构静态不确定时,这些复杂性甚至更加复杂,因为无法通过直接应用平衡方程来确定外力和内力。为了解决这些问题,本研究旨在基于柔韧性(力)方法开发一种新颖的简化分析模型,以预测超静定RC结构直至挠曲或弯曲时的挠度。该分析模型考虑了混凝土开裂后挠曲裂缝对RC结构抗剪刚度退化的影响,并为设计实践调整了格式。通过使用RC元件模拟实验测试,可以证明分析模型的良好预测性能,其中剪切变形对这些测试中记录的总挠度具有不同的贡献水平。

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