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用于地震能量吸收的负泊松比几何超材料。

Metamaterials of Auxetic Geometry for Seismic Energy Absorption.

作者信息

Saddek Ahmed Abdalfatah, Lin Tzu-Kang, Chang Wen-Kuei, Chen Chia-Han, Chang Kuo-Chun

机构信息

Department of Civil Engineering, National Yang Ming Chiao Tung University, Hsinchu 300093, Taiwan.

National Center for Research on Earthquake Engineering, Taipei 106219, Taiwan.

出版信息

Materials (Basel). 2023 Aug 7;16(15):5499. doi: 10.3390/ma16155499.

Abstract

The propagation of earthquake energy occurs primarily through elastic waves. If the seismic force input to a structure can be directly reduced from the source, then the structure can be protected from seismic wave energy. Seismic metamaterials, regarded as periodic structures with properties different from conventional materials, use wave propagation characteristics and bandgaps to dissipate seismic wave energy. When the seismic wave is located in the bandgap, the transmission of seismic wave energy is effectively reduced, which protects the structure from the damage caused by seismic disturbance. In practical application, locating seismic frequencies below ten Hz is a challenge for seismic metamaterials. In the commonly used method, high-mass materials are employed to induce the effect of local resonance, which is not economically feasible. In this study, a lightweight design using auxetic geometry is proposed to facilitate the practical feasibility of seismic metamaterials. The benefits of this design are proven by comparing conventional seismic metamaterials with metamaterials of auxetic geometry. Different geometric parameters are defined using auxetic geometry to determine the structure with the best bandgap performance. Finite element simulations are conducted to evaluate the vibration reduction benefits of auxetic seismic metamaterials in time and frequency domains. Additionally, the relationship between the mass and stiffness of the unit structure is derived from the analytical solution of one-dimensional periodic structures, and modal analysis results of auxetic metamaterials are verified. This study provides seismic metamaterials that are lightweight, small in volume, and possess low-frequency bandgaps for practical applications.

摘要

地震能量的传播主要通过弹性波进行。如果能够从源头上直接降低输入到结构的地震力,那么该结构就能免受地震波能量的影响。地震超材料被视为具有与传统材料不同特性的周期性结构,它利用波的传播特性和带隙来耗散地震波能量。当地震波处于带隙中时,地震波能量的传输会有效降低,从而保护结构免受地震干扰造成的损害。在实际应用中,将地震频率定位在10赫兹以下对地震超材料来说是一项挑战。在常用方法中,采用高质量材料来引发局部共振效应,这在经济上并不可行。在本研究中,提出了一种采用负泊松比几何形状的轻量化设计,以提高地震超材料的实际可行性。通过将传统地震超材料与负泊松比几何形状的超材料进行比较,证明了这种设计的优势。利用负泊松比几何形状定义不同的几何参数,以确定具有最佳带隙性能的结构。进行有限元模拟,以评估负泊松比地震超材料在时域和频域的减振效果。此外,从一维周期性结构的解析解中推导了单元结构的质量与刚度之间的关系,并验证了负泊松比超材料的模态分析结果。本研究提供了重量轻、体积小且具有低频带隙的地震超材料用于实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df31/10419852/8bf4bce9cc46/materials-16-05499-g001.jpg

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