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Study of one-dimensional multifunctional acoustic metamaterials.

机译:一维多功能声学超材料的研究。

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摘要

A metamaterial is a material that gains its properties from its microstructures rather than from its constituent material phases. One type of metamaterial takes the form of a composite that contains manmade microstructures embedded in a matrix material. If the periodically placed microstructures display a local resonant frequency, the metacomposite as a whole forms a metamaterial with frequency-dependent effective mass density. Also the acoustic metamaterial exhibits unusual dynamic responses such as negative effective mass densities in certain frequency range (the bandgap). It is demonstrated that, in a one-dimensional acoustic metamaterial with resonator microstructures, the amplitude of harmonic waves with frequencies near the local resonance frequency of the resonator attenuates significantly. In other words, these waves are stopped by the metacomposite. Another unusual behavior of this metacomposite is that when excited with frequencies near the local resonance frequency, the internal mass in the microstructure can absorb a large amount of energy from the external excitation. If this type of microstructure is used to make a composite with a matrix material then we will have a metacomposite which can block unwanted dynamic disturbances to propagate into the material and harvest kinetic energy with internal masses.;In this study, the function of the resonator is extended to perform energy harvesting by converting its kinetic energy into electric energy making the metamaterial multifunctional. The proposed design of the local resonator consists of a permanent magnet (to be doubly used as an internal mass) supported by springs and enclosed with a capped tube. Coils are wrapped around the tube for electricity generation. The metamaterial contains many of these unit cells whose local resonance frequency can be easily selected according to the environment. As the magnet oscillates, electricity is generated.;The desired conditions for electricity generation and wave attenuation for finite length of the metamaterial are determined by finite element analysis. A preliminary simulation showed that one unit cell could produce AC current with the local resonance frequency. The experiment demonstrates that this acoustic metamaterial which contain seven unit cells can generate electricity and the voltage of the generated electricity is dependent on the driving frequency. Thus, when the metamaterial is subjected to dynamic disturbances with these bandgap frequencies, energy is stored in the resonators leaving the metamaterial to appear quiet. The stored energy in the internal masses is then converted to electricity.
机译:超材料是一种通过其微观结构而不是从其构成的材料相获得其性能的材料。一种类型的超材料采用复合材料的形式,该复合材料包含嵌入基质材料中的人造微结构。如果周期性放置的微结构显示局部共振频率,则超复合材料整体上会形成具有随频率变化的有效质量密度的超材料。同样,声学超材料还表现出不同寻常的动态响应,例如在某些频率范围内(带隙)的负有效质量密度。结果表明,在具有谐振器微结构的一维声学超材料中,频率接近谐振器局部谐振频率的谐波振幅会明显衰减。换句话说,这些波被超复合材料阻止。这种超复合材料的另一个不寻常的行为是,当以接近局部共振频率的频率进行激发时,微结构中的内部质量可以吸收来自外部激发的大量能量。如果将这种类型的微结构用于与基体材料的复合材料,那么我们将得到一种超复合材料,它可以阻止有害的动态扰动传播到材料中并吸收内部质量的动能。通过扩展将动能转换为电能以使超材料变得多功能来扩展能量执行功能。提议的局部谐振器设计包括一个由弹簧支撑并被盖管封闭的永磁体(将被用作内部质量)。线圈缠绕在管子上以发电。超材料包含许多这些晶胞,它们的局部共振频率可以根据环境轻松选择。随着磁体的振荡,产生电能。通过有限元分析确定超材料有限长度的发电和电波衰减的理想条件。初步模拟显示,一个单位电池可以产生具有局部共振频率的交流电流。实验表明,这种包含七个晶胞的声学超材料可以发电,并且发电电压取决于驱动频率。因此,当超材料受到这些带隙频率的动态干扰时,能量存储在谐振器中,从而使超材料显得安静。内部质量中存储的能量然后转换为电能。

著录项

  • 作者

    Mikoshiba, Kota.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Aerospace.;Engineering Electronics and Electrical.
  • 学位 M.S.E.
  • 年度 2010
  • 页码 59 p.
  • 总页数 59
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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