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具有超宽低频三维带隙的声子超结构作为宽带低频滤波器。

Phononic metastructures with ultrawide low frequency three-dimensional bandgaps as broadband low frequency filter.

作者信息

Lim C W

机构信息

City University of Hong Kong Shenzhen Research Institute, Shenzhen, People's Republic of China.

Department of Architecture and Civil Engineering, City University of Hong Kong, Kowloon, Hong Kong SAR, People's Republic of China.

出版信息

Sci Rep. 2021 Mar 30;11(1):7137. doi: 10.1038/s41598-021-86520-8.

Abstract

Vibration and noise control are among the classical engineering problems that still draw extensive research interest today. Multiple active and passive control techniques to resolve these problems have been reported, however, the challenges remain substantial. The recent surge of research activities on acoustic metamaterials for vibration and noise control are testimony to the fact that acoustic metamaterial is no longer limited to pure theoretical concepts. For vibration and noise control over an ultrawide frequency region, 3-D metastructures emerge as a novel solution tool to resolve this problem. In that context, the present study reports a novel proposal for 3-D monolithic phononic metastructures with the capability to induce low frequency ultrawide three-dimensional bandgaps with relative bandwidth enhancements of 157.6% and 160.1%. The proposed monolithic metastructure designs consist of elastic frame assembly that is connected with the rigid cylindrical masses. Such structural configuration mimics monoatomic mass-spring chain where an elastic spring is connected with a rigid mass. We develop an analytical model based on monoatomic mass-spring chain to determine the acoustic mode frequency responsible for opening the bandgap. The wave dispersion study reveals the presence of ultrawide bandgaps for both types of metastructures. The modal analysis shows distribution of vibration energy in the bandgap opening (global resonant mode) and closing (local resonant mode) bounding edges. We further analyze the band structures and discuss the physical concepts that govern such ultrawide bandgap. Vibration attenuation inside the bandgap frequency range is demonstrated by frequency response studies conducted by two different finite element models. Thanks to additive manufacturing technology, 3-D prototypes are prepared and low amplitude vibration test is performed to validate the numerical findings. Experimental results show the presence of an ultrawide vibration attenuation zone that spreads over a broadband frequency spectrum. The bandgaps reported by the proposed metastructures are scale and material independent. The research methodology, modelling and design strategy presented here may pave the way for the development of novel meta-devices to control vibration and noises over a broadband frequency range.

摘要

振动和噪声控制是当今仍吸引广泛研究兴趣的经典工程问题。已经报道了多种用于解决这些问题的主动和被动控制技术,然而,挑战依然严峻。最近关于用于振动和噪声控制的声学超材料的研究活动激增,这证明声学超材料不再局限于纯粹的理论概念。对于超宽频率范围内的振动和噪声控制,三维超结构成为解决该问题的一种新型解决方案工具。在此背景下,本研究报告了一种新型的三维整体声子超结构方案,该结构能够诱导出相对带宽增强分别为157.6%和160.1%的低频超宽三维带隙。所提出的整体超结构设计由与刚性圆柱质量块相连的弹性框架组件组成。这种结构配置模仿了单原子质量 - 弹簧链,其中弹性弹簧与刚性质量块相连。我们基于单原子质量 - 弹簧链开发了一个分析模型,以确定负责打开带隙的声学模式频率。波传播色散研究揭示了两种类型超结构都存在超宽带隙。模态分析显示了带隙开启(全局共振模式)和关闭(局部共振模式)边界边缘处的振动能量分布。我们进一步分析了能带结构,并讨论了控制这种超宽带隙的物理概念。通过两个不同的有限元模型进行频率响应研究,证明了带隙频率范围内的振动衰减。得益于增材制造技术,制备了三维原型并进行了低振幅振动测试以验证数值结果。实验结果表明存在一个超宽的振动衰减区,其分布在宽带频谱上。所提出的超结构报告的带隙与尺寸和材料无关。这里提出的研究方法、建模和设计策略可能为开发新型超器件以在宽带频率范围内控制振动和噪声铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d534/8010083/855a47401a48/41598_2021_86520_Fig1_HTML.jpg

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