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Shear Deformation and Sliding-Based Fiber Beam-Column Model for Seismic Analysis of Reinforced Concrete Coupling Beams

机译:钢筋混凝土耦合梁抗剪分析的剪切变形和基于滑动的纤维梁柱模型

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摘要

Conventional RC coupling beams have been widely used as key energy-dissipation components in frame-core tube structural systems for high-rise buildings. A model with sufficient efficiency, accuracy, and practicality is urgently needed for the seismic analysis of high-rise structures. According to test results, both the shear deformation and shear sliding mechanisms are critical to assessing the seismic performance of coupling beams. However, available shear models for beams and columns cannot give satisfactory results in modeling both mechanisms in finite-element analysis (FEA). To address this problem, this study takes into account the section shear force-shear strain and shear sliding laws in the traditional displacement-based fiber beam-column element, which is implemented into a general FEA package. A new section shear force-shear strain law, which can consider the pinching effect, strength and stiffness deterioration, shear capacity degradation, and arbitrary complex loading path is first proposed. In addition, a new section shear force-shear sliding strain law is developed to model the special shear sliding phenomenon. Then, shear sliding and shear compression limit formulas are given to determine different failure modes. Two beam-column elements, named the shear element and sliding element, are finally developed and combined to model the coupling beam. To verify the proposed model, 47 test specimens are collected and summarized. The formulas for the shear strength, cracked shear stiffness, and shear displacement limit are proposed and verified. Then, the model is applied to 16 test specimens. It is indicated that the model has sufficient accuracy, high efficiency, and convenient modeling procedure, which offers a reliable and powerful tool for seismic analysis of conventional RC coupling beams and high-rise structures. (c) 2016 American Society of Civil Engineers.
机译:常规的RC耦合梁已被广泛用作高层建筑框架芯管结构系统中的关键消能部件。高层结构的地震分析迫切需要一个具有足够效率,准确性和实用性的模型。根据测试结果,剪切变形和剪切滑动机制对于评估耦合梁的抗震性能都是至关重要的。但是,在有限元分析(FEA)中对两种机制进行建模时,可用的梁和柱的剪切模型不能给出令人满意的结果。为了解决这个问题,本研究考虑了在传统的基于位移的纤维梁柱单元中的截面剪力-剪切应变和剪切滑动定律,并将其应用于通用的FEA软件包中。首先提出了一种新的截面剪力-剪切应变定律,该定律可以考虑夹紧效应,强度和刚度的下降,剪切能力的下降以及任意复杂的荷载路径。此外,建立了新的截面剪力-剪切滑动应变定律,以模拟特殊的剪切滑动现象。然后,给出剪切滑动和剪切压缩极限公式,以确定不同的破坏模式。最后开发了两个梁柱单元,分别称为剪力单元和滑动单元,并将其组合以对耦合梁进行建模。为了验证所提出的模型,收集并总结了47个试样。提出并验证了抗剪强度,断裂抗剪刚度和剪切位移极限的公式。然后,将模型应用于16个测试样本。结果表明,该模型具有足够的精度,效率和便捷的建模程序,为常规RC耦合梁和高层结构的地震分析提供了可靠而强大的工具。 (c)2016年美国土木工程师学会。

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