Analytical Research on the Mitigation of Structure-Borne Vibrations from Subways Using Locally Resonant Periodic Foundations

Xu, Yifei, Cao, Zhigang, Yuan, Zonghao, Cai, Yuanqiang, Costa, Pedro Alves
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引用次数: 1

Abstract

Filtering properties of locally resonant periodic foundations (LRPFs) have inspired an innovative direction towards the mitigation of structural vibrations. To mitigate the structure-borne vibrations from subways, this study proposes an LRPF equipped with a negative stiffness device connecting the resonator and primary structure. The proposed LRPF can exhibit a quasi-static band gap covering the ultra-low frequency range. These frequency components have the properties of strong diffraction and low attenuation and contribute the most to the incident wave fields impinging on nearby buildings. By formulating the interaction problem between the tunnel-ground and LRPF-superstructure systems, the mitigation performance of the proposed LRPF is evaluated considering the effects of soil compliance and superstructure. The performance depends on the dynamic properties of the ground, foundation, and superstructure as well as their coupling. Transmission analyses indicate that the superstructure responses can be effectively attenuated in the quasi-static band gap by adjusting the negative stiffness. Considering the coupling of the flexible ground, the peak responses of the LRPF-superstructure system occur not only at its eigenfrequencies but also at coupled resonance frequencies due to the contribution of the soil compliance. This study provides an analytical tool for mitigating the structure-borne vibrations from subways with the LRPF.
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局部共振周期基础对地铁结构振动抑制的分析研究
局部共振周期基础(LRPFs)的滤波特性激发了结构振动缓解的创新方向。为了减轻地铁结构的振动,本研究提出了一种配备负刚度装置连接谐振器和主结构的LRPF。所提出的LRPF具有覆盖超低频率范围的准静态带隙。这些频率分量具有强衍射和低衰减的特性,对撞击附近建筑物的入射波场贡献最大。通过建立隧道地面与LRPF上部结构体系的相互作用问题,综合考虑土体柔度和上部结构的影响,对LRPF的减振性能进行了评价。其性能取决于地基、基础和上部结构的动力特性以及它们之间的耦合。传递分析表明,通过调整负刚度可以有效地衰减准静态带隙中的上部结构响应。考虑柔性地基的耦合作用,由于土体柔度的影响,lrpf -上部结构体系的峰值响应不仅出现在其本特征频率上,而且出现在耦合共振频率上。本研究为利用LRPF减轻地铁结构振动提供了分析工具。
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