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首页> 外文期刊>Journal of vibration and control: JVC >Enhancing the band gap of an active metamaterial
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Enhancing the band gap of an active metamaterial

机译:增强活动超材料的带隙

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Metamaterials have been the subject of significant interest over the past decade due to their ability to produce novel acoustic behaviour beyond that seen in naturally occurring media. As well as their potential in acoustic cloaks and lenses, of particular interest is the appearance of band gaps which lead to very high levels of attenuation across the material within narrow frequency ranges. Unlike traditional periodic materials which have been employed at high frequencies, the resonant elements within metamaterials allow band gaps to form within the long wavelength limit; at low frequencies where it is most difficult to design satisfactory passive isolation solutions. Hence, metamaterials may provide a path to high-performance isolation at low frequencies. Passively these band gaps occur over a narrow bandwidth, however the inclusion of active elements provide a method for enhancing this behaviour and producing attenuation over a broad band. A new type of active viscoelastic metamaterial is presented that achieves double negativity and could be employed as a high-performance vibration isolator at low frequencies. A mathematical method for manipulating the band gap profile is developed and a prototype is produced. The passive band gap is confirmed in the laboratory, and then by applying active control using optimised feedback filters it is shown that the region at which attenuation occurs around the band gap could be greatly enhanced whilst retaining the peak passive band gap performance. The active metamaterial demonstrates that a unified design philosophy matching the best features of active and passive functionality can achieve high levels of attenuation over wide frequency bands.
机译:由于能够在自然发生的媒体中看到的新型声学行为的能力,超超材料是过去十年的重大兴趣的主题。以及它们在声学披风和镜片中的潜力,特别感兴趣的是带空隙的外观,这导致窄频率范围内的材料的极高衰减。与在高频采用的传统的周期性材料不同,超材料内的谐振元件允许带间隙形成在长波长限度内;在低频时,最难以设计令人满意的被动隔离解决方案。因此,超材料可以在低频下提供高性能隔离的路径。被动地在窄带宽上发生这些带隙,但是包含有源元素提供了一种用于增强这种行为并在宽带上产生衰减的方法。提出了一种新型的活性粘弹性超材料,其实现了双消极性,并且可以在低频下用作高性能振动隔离器。开发了一种用于操纵带隙轮廓的数学方法,并产生原型。在实验室中确认无源带隙,然后通过使用优化的反馈过滤器施加有源控制,示出了在带隙周围发生衰减的区域可以大大提高,同时保持峰值被动带隙性能。活动的超材料表明,符合主动和被动功能的最佳特征的统一设计理念可以在宽频带上实现高水平的衰减。

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