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DESIGN OF A BROADBAND ELASTIC METAMATERIAL VIA TOPOLOGICALLY OPTIMIZED INERTIAL AMPLIFICATION MECHANISMS

机译:拓扑优化惯性扩增机构宽带弹性超材料的设计

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Elastic metamaterials enable to generate phononic band gaps below the Bragg limit. Most metamaterials in the literature are based on vibration absorption (local resonance) principle. In this study, a two dimensional elastic metamaterial is designed, which utilizes inertial amplification principle. This principle allows generating wide band gaps at low frequencies. Firstly, the theory of phononic gaps induced by inertial amplification in finite structures is discussed briefly utilizing a lumped parameter model. Afterwards, a compliant inertial amplification mechanism is introduced, which is the building block of the metamaterial designed in this paper. Topology optimization is performed on this mechanism to obtain a wide vibration stop band for a given mass constraint. Then, vibration transmissibilities of one dimensional finite periodic structures with various number of unit cells are presented. Subsequently, a two dimensional metamaterial is constructed by incorporating the topologically optimized compliant inertial amplification mechanisms. Finally, in-plane vibration isolation performance of this two dimensional system is demonstrated via vibration transmissibility plots.
机译:弹性超材料使能在布拉格限制下产生声子频带间隙。文献中大多数超材料基于振动吸收(局部共振)原理。在本研究中,设计了一种二维弹性超材料,其利用惯性放大原理。该原理允许在低频下产生宽带间隙。首先,利用集总参数模型来简要讨论有限结构中惯性放大引起的声音间隙理论。之后,引入了柔顺的惯性放大机构,这是本文设计的超材料的构建块。对该机制执行拓扑优化,以获得给定质量约束的宽振动止动杆。然后,呈现了具有各种数量的单元电池的一维有限周期结构的振动透射性。随后,通过结合拓扑优化的柔顺惯性扩增机构来构建二维超材料。最后,通过振动传递层绘图对此二维系统的面内振动隔离性能进行说明。

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