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Membrane-type smart metamaterials for multi-modal sound insulation

机译:用于多模态隔音的膜型智能超材料

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摘要

Metamaterial provides a promising way to control low-frequency noise, but its narrow bandgap limits its applications. To end this, a membrane-type smart metamaterial with multi-modal sound insulation property is studied. The proposed metamaterial consists of an aluminum membrane bonded with multi-modal resonant piezoelectric resonators. Both simulated and experimental results show that the proposed metamaterial can broaden the locally resonant bandgaps because of the effect of the multi-modal resonance (the percent bandwidths are 0.19 and 0.22 for the lowest mode and higher two modes, respectively). Large multi-modal sound insulations (over 37 dB) are obtained around the designed resonant frequencies in low frequency regime (2000 Hz) with an ultra-thin thickness (over 1000 times thinner than the acoustic wavelength). It is also demonstrated that the excellent sound insulation property can be tuned by simply adjusting the external circuits instead of modifying the structure itself. The underlying mechanism of the unusual sound insulation of the proposed metamaterial is attributed to the negative effective bending stiffness D-eq derived by the effective medium method. In addition, the parametric study shows that the circuital parameters (capacitances) are inversely related to the sound transmission loss of the proposed multi-resonant metamaterial, which benefits the optimization of insulation effect. (C) 2018 Acoustical Society of America.
机译:超材料提供了控制低频噪声的有希望的方法,但其窄的带隙限制了其应用。为此,研究了具有多模态隔音性质的膜式智能超级材料。所提出的超材料包括与多模态谐振压电谐振器粘合的铝膜组成。模拟和实验结果都表明,由于多模态共振的效果,所提出的超材料可以扩大局部共振带隙(分别为最低模式的带宽百分比和0.22个,两种模式)。大量的多模态隔音(超过37 dB)围绕设计的低频状态(& 2000 Hz)的设计谐振频率,超薄厚度(比声波长缩短超过1000倍)。还证明了通过简单地调整外部电路而不是修改结构本身,可以调整出色的隔音性能。所提出的超材料的异常隔音的潜在机制归因于通过有效培养方法衍生的负有效弯曲刚度D-eq。另外,参数研究表明,电路参数(电容)与所提出的多谐振超材料的声音传输损耗与所提出的多谐振超材料的声音丢失反向相关,这有利于绝缘效果的优化。 (c)2018年声学学会。

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    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

    Hunan Univ Coll Environm Sci &

    Engn Changsha 410082 Hunan Peoples R China;

    Hunan Univ Technol Coll Elect &

    Informat Engn Zhuzhou 412007 Peoples R China;

    Hunan Univ State Key Lab Adv Design &

    Mfg Vehicle Body Changsha 410082 Hunan Peoples R China;

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  • 正文语种 eng
  • 中图分类 声学;
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