首页> 外文会议>International Workshop on Condensed Matter Theories >ACOUSTIC BAND GAP FORMATION IN TWO-DIMENSIONALLOCALLY RESONANT SONIC CRYSTALS COMPRISED OFHELMHOLTZ RESONATORS
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ACOUSTIC BAND GAP FORMATION IN TWO-DIMENSIONALLOCALLY RESONANT SONIC CRYSTALS COMPRISED OFHELMHOLTZ RESONATORS

机译:二维组合谐振晶体中的声带间隙形成包括Helmholtz谐振器

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We present a new type of sonic crystal technology offering a novel method of achieving broad acoustic band gaps. The proposed design of a locally resonating sonic crystal (LR.SC) is constructed from "C"-shaped Helmholtz resonators as opposed to traditional solid scattering units. This unique construction enables a two band gap system to be generated in which the first a Bragg type band gap, arises due to the periodic nature of the crystal, whilst the second gap results from resonance of the air column within the resonators. The position of this secondary band gap is found to be dependent upon the dimensions of the resonating cavity.The band gap formation is investigated theoretically using finite element methods, and confirmed through experimental testing. It is noted that the resonance band gaps detected cover a much broader frequency range (in the order of kHz) than has been achieved to date. In addition the possibility of overlapping such a wide band gap with the characteristic Bragg gap generated by the structure itself could yield gaps of even greater range.A design of sonic crystal is proposed, that comprises of several resonators with di& fering cavity sizes. Such a structure generates multiple resonance gaps corresponding to the various resonator sizes, which may be overlapped to form yet larger band gaps.This multiple resonance gap system can occur in two configurations. Firstly a simple mixed array can be created by alternating resonator sizes in the array and secondly using a system coined the Matryoshka (Russian doll) array in which the resonators are distributed inside one another.The proposed designs of LRSC's offer a real potential for acoustic shielding using sonic crystals, as both the size and position of the band gaps generated can be controlled. This is an application which has been suggested and investigated for several years with little progress. Furthermore the frequency region attenuated by resonance is unrelated to the crystals lattice constant, providing yet more flexibility in the design of such devices.
机译:我们展示了一种新型的Sonic Crystal技术,提供了一种实现宽声带隙的新方法。所提出的局部谐振晶体(LR.SC)的设计由“C”形亥姆霍兹谐振器构成,而不是传统的固体散射单元。这种独特的结构使得能够产生两个带隙系统,其中第一A Bragg型带隙由于晶体的周期性而产生,而第二间隙是由谐振器内的空气柱的谐振产生的。发现该二级带隙的位置取决于谐振腔的尺寸。理论上使用有限元方法研究带隙形成,并通过实验测试证实。应注意,检测到谐振带间隙覆盖比迄今为止所达到的更广泛的频率范围(按kHz的顺序)。另外,利用结构本身产生的特征布拉格间隙重叠这种宽带隙的可能性可以产生甚至更大范围的间隙。提出了声岩晶体的设计,该设计包括具有不同腔尺寸的多个谐振器。这种结构产生对应于各种谐振器尺寸的多个谐振间隙,其可以重叠以形成且较大的带空隙。本多个谐振间隙系统可以以两种配置发生。首先,可以通过阵列中的交替谐振器大小来创建简单的混合阵列,其次使用系统被创造出诸如彼此内部分布的Matryoshka(俄罗斯娃娃)阵列。LRSC的建议设计提供了声学屏蔽的实际潜力使用Sonic晶体,可以控制产生的带间隙的尺寸和位置。这是一项申请,已经提出并调查了几年的进展。此外,通过谐振减弱的频率区域与晶格常数无关,在这种装置的设计中提供了更具的灵活性。

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