BEAM-TYPE ACOUSTIC METAMATERIAL DESIGN FOR VIBRATION SUPPRESSION WITH STRUCTURAL DAMPING

Tianqi Zhao, Tao Chen, Wensheng Ma
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Abstract

Vibration suppression of a beam-type acoustic metamaterial with periodic cavities filled by a viscoelastic membrane that supports a hollow mass still filled by a viscoelastic membrane that supports a local resonator is investigated. First, the proposed beam-type acoustic metamaterial is modeled as a one-dimensional mass-in-mass-in-mass (MMM) lumped parameter chain with structural damping, and then a mass-in-mass (MM) lumped parameter chain with structural damping is also given for comparison. For the two chains, the influence of structural damping on band structures are considered, and the loss factors associated with all propagating Bloch modes are compared. Finally, as an example, the beam-type metamaterials based on MM model with structural damping and MMM model with structural damping are designed to suppress vibration, respectively. The viscoelastic membranes act as structural damping. The finite element method based on Kirchhoff’s plate theory is developed to capture dynamic displacement fields of different metamaterials. Structural frequency response is calculated for different configurations of cantilevered structures when disturbance is considered. The results show that the proposed beam-type acoustic metamaterial based on MMM model with structural damping has higher dissipation and display high damping and does not sacrifice stiffness than MM model with structural damping.
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具有结构阻尼的梁型声学超材料减振设计
研究了一种具有周期性空腔的波束型声学超材料的振动抑制问题,该周期性空腔由支撑空心质量的粘弹性膜填充,同时又由支撑局部谐振腔的粘弹性膜填充。首先,将所提出的梁型声学超材料建模为具有结构阻尼的一维质量-质量-质量(MMM)集总参数链,然后给出具有结构阻尼的质量-质量(MM)集总参数链进行比较。对于两种链,考虑了结构阻尼对带结构的影响,并比较了各传播布洛赫模态的损耗因子。最后,以带结构阻尼的MM模型和带结构阻尼的MMM模型为例,分别设计了梁型超材料的减振效果。粘弹性膜起结构阻尼作用。提出了基于基尔霍夫板理论的有限元方法来捕捉不同超材料的动态位移场。在考虑扰动的情况下,计算了不同构型悬臂结构的频率响应。结果表明,基于结构阻尼的MMM模型的梁型声学超材料具有更高的耗散和高阻尼,且不牺牲刚度。
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