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首页> 外文期刊>Journal of structural engineering >Numerical Simulation of Hybrid Sliding-Rocking Columns Subjected to Earthquake Excitation
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Numerical Simulation of Hybrid Sliding-Rocking Columns Subjected to Earthquake Excitation

机译:地震作用下混合滑移-晃动柱的数值模拟

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This paper introduces a novel element formulation for the dynamic analysis of bridges incorporating posttensioned segmental columns with hybrid sliding-rocking (HSR) joints distributed over their height. These columns are termed HSR columns. Bridges with HSR columns combine construction rapidity with superior seismic performance through joint sliding and rocking, thereby offering large deformation capacity with low damage, energy dissipation and self-centering properties. Hybrid sliding-rocking columns are typically designed, under quasi-static (single-mode) conditions, to exhibit rocking at the end joints and sliding at the intermediate joints over the column height. However, when HSR columns are subjected to arbitrary dynamic loading, any joint can exhibit sliding or rocking or both, depending on the intensity and frequency content of the applied load. As a result, there is a need for models capable of predicting such complex responses. The proposed two-node HSR element formulation combines a gradient inelastic (GI) flexibility-based (FB) beam-column element formulation that accounts for member material deformations and joint rocking with a hysteretic friction model that accounts for joint sliding. Joint rocking is considered within the GI FB element via a joint cross section of zero tensile strength. The proposed HSR element addresses major deficiencies of existing modeling approaches, including strain localization and loss of objectivity (lack of convergence with mesh refinements) due to the cross section of zero tensile strength. The proposed HSR element formulation is utilized to simulate two past experiments: a quasi-static test on an HSR column and a shake table test on a single-span bridge with two single-column HSR piers. None of the computational simulations exhibit instabilities in the numerical solution, which are common in analyses with models including friction elements subjected to rapidly fluctuating contact loads, demonstrating the good stability properties of the proposed HSR element formulation. The analysis results match the test data reasonably well, particularly in terms of peak forces and displacements, demonstrating that the proposed formulation can be used to further investigate the design and performance of HSR systems. (C) 2017 American Society of Civil Engineers.
机译:本文介绍了一种新的元素公式,用于桥梁的动态分析,该桥梁结合了后张拉分段柱,并在其高度上分布了混合滑动-摇动(HSR)缝。这些列称为HSR列。带有高铁柱的桥梁通过节理滑动和摇摆将施工速度与出色的抗震性能结合在一起,从而提供了大变形能力,低损伤,低能耗和自定心特性。通常,在准静态(单模)条件下设计混合滑动摇摆式立柱,使其在端接处表现出摇摆,在中间接点处在整个柱高上滑动。但是,当HSR柱承受任意动态载荷时,根据所施加载荷的强度和频率含量,任何接缝都可能呈现出滑动或摇摆或两者兼有。结果,需要能够预测这种复杂响应的模型。拟议的两节点HSR单元公式结合了考虑构件材料变形和接头晃动的基于梯度非弹性(GI)挠性(FB)的梁柱单元公式,并结合了考虑了接头滑动的磁滞摩擦模型。 GI FB元素内的接头摇晃通过零拉伸强度的接头横截面来考虑。提出的HSR元件解决了现有建模方法的主要缺陷,包括应变局部化和由于抗拉强度为零的截面而导致的客观性损失(缺少网格细化的收敛性)。建议的HSR单元公式可用于模拟两个过去的实验:在HSR柱上进行准静态测试,在具有两个单柱HSR墩的单跨桥上进行振动台测试。没有一个计算模拟在数值解中表现出不稳定性,这在包含摩擦元件的模型的分析中很常见,其中摩擦元件承受快速波动的接触载荷,证明了所提出的HSR元件配方具有良好的稳定性。分析结果与测试数据相当吻合,特别是在峰值力和位移方面,表明所提出的公式可用于进一步研究高铁系统的设计和性能。 (C)2017年美国土木工程师学会。

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