Experimental and numerical studies on the seismic behavior of spherical reticulated shells with sliding isolation bearings

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL Structures Pub Date : 2024-11-01 DOI:10.1016/j.istruc.2024.107645
Peng Zhuang , Xiaoyu Hu , T.Y. Yang
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Abstract

Spherical reticulated shells are spatial structures widely used for important public buildings with concerns of seismic behaviors. To assess the feasibility of friction pendulum bearings (FPBs) for seismic response control in reticulated shell structures, a 1/10 scale single-layer spherical reticulated shell model with small-scale FPBs was designed and fabricated. A shaking table was used to generate triaxial dynamic and seismic inputs for the test structures with and without isolators, and their natural vibration characteristics and seismic responses were measured. Based on the experimental results, significant increase of the fundamental natural period of the test structure was achieved using the sliding isolation system. The damping ratio also improved for the sliding isolated structure. Moreover, seismic response of the isolated test structure was significantly lower than that of the test model with fixed roof bearings. Following the experimental study, an OpenSees-based numerical simulation was conducted to capture the seismic behavior of the isolated test structure. The numerical and experimental responses agreed well. The modeling method was extended to full-sized reticulated shell structures using FPB systems. The effects of the FPB parameters (radius of curvature and friction coefficient) on the seismic behavior of the structures were numerically analyzed, indicating that the friction coefficient is the most critical parameter governing the structural responses. The seismic fragility of FPB-isolated full-sized reticulated shell structures considering various friction properties was investigated to provide beneficial design recommendations for the engineering practices of such isolated structures.
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带滑动隔离支座的球形网状壳体地震行为的实验和数值研究
球形网状壳体是一种空间结构,广泛应用于重要的公共建筑,其抗震性能备受关注。为了评估摩擦摆支座(FPB)在网状壳体结构中用于地震反应控制的可行性,设计并制作了带有小型 FPB 的 1/10 比例单层球形网状壳体模型。使用振动台对带隔振器和不带隔振器的试验结构产生三轴动力输入和地震输入,并测量其固有振动特性和地震响应。根据实验结果,使用滑动隔震系统后,试验结构的基本固有周期显著增加。滑动隔震结构的阻尼比也有所提高。此外,隔震试验结构的地震响应明显低于带固定屋顶支座的试验模型。实验研究结束后,进行了基于 OpenSees 的数值模拟,以捕捉隔震试验结构的地震行为。数值模拟结果与实验结果一致。建模方法扩展到了使用 FPB 系统的全尺寸网壳结构。数值分析了 FPB 参数(曲率半径和摩擦系数)对结构地震行为的影响,结果表明摩擦系数是控制结构响应的最关键参数。考虑到各种摩擦特性,研究了 FPB 隔离全尺寸网状壳体结构的地震脆性,为此类隔离结构的工程实践提供了有益的设计建议。
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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
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