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被动隔振中四组分周期桩屏障的带隙特性

Bandgap characteristics of four component periodic pile barriers in passive vibration isolation.

作者信息

Liu Jinglei, Cao Jinyuan, Li Xiuxin, Chen Hang, Ye Qingzhi, Feng Guishuai

机构信息

Hebei University of Architecture, Zhangjiakou, 075000, Hebei, China.

Hebei Key Laboratory of Diagnosis, Reconstruction and Anti-disaster of Civil Engineering, Zhangjiakou, 075000, Hebei, China.

出版信息

Sci Rep. 2024 Nov 1;14(1):26358. doi: 10.1038/s41598-024-76735-w.

Abstract

Based on the local resonance theory, the vibration isolation performance of four-component periodic pile barriers consisting of a matrix, an outer pipe, an inner pipe, and a pile core was investigated using the finite element method (FEM). This configuration is contrasted with traditional three-component periodic pile barriers, which are composed of a matrix, a pipe, and a pile core. The four-component systems demonstrate significantly broader bandgaps compared to three-component systems. To validate the efficiency of the FEM, model test on pile barriers were conducted, facilitating a comparison between the FEM and experimental observations of bandgap characteristics. Additionally, the effects of the outer pipe's density, elastic modulus, and thickness on the complete bandgap characteristics were comprehensively studied within the four-component structure. It is found that the broadest vibration isolation band gaps occur under hexagonal arrangement pattern. In square and hexagonal lattice configurations, the density, elastic modulus, and thickness of the outer pipe pile's pile have predominantly influenced the upper bound frequency (UBF). There has been a positive correlation between the elastic modulus and the UBF, while the density and thickness have shown inverse relationships. Moreover, there exists a elastic modulus threshold, marking a transition in the displacement mode of the UBF, from the outer irreducible Brillouin zone (M or X) to the inner zone (Γ). Once the threshold is exceeded, both the vibration displacement mode and the width of bandgap remain substantially unchanged. The results obtained in the present paper are very useful for the design and application of periodic pile barriers in ambient vibration reduction.

摘要

基于局部共振理论,采用有限元方法(FEM)研究了由基体、外管、内管和桩芯组成的四组分周期性桩屏障的隔振性能。将这种结构与由基体、管道和桩芯组成的传统三组分周期性桩屏障进行了对比。与三组分系统相比,四组分系统表现出明显更宽的带隙。为了验证有限元方法的有效性,对桩屏障进行了模型试验,便于将有限元方法与带隙特性的实验观测结果进行比较。此外,还在四组分结构中全面研究了外管的密度、弹性模量和厚度对完全带隙特性的影响。发现在六边形排列模式下出现最宽的隔振带隙。在正方形和六边形晶格配置中,外管桩的密度、弹性模量和厚度主要影响上限频率(UBF)。弹性模量与上限频率之间存在正相关,而密度和厚度则呈现负相关。此外,存在一个弹性模量阈值,标志着上限频率的位移模式从外不可约布里渊区(M或X)向内区(Γ)的转变。一旦超过该阈值,振动位移模式和带隙宽度都基本保持不变。本文所得结果对于周期性桩屏障在环境减振中的设计和应用非常有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2616/11530523/7a2d083cf791/41598_2024_76735_Fig1_HTML.jpg

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