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首页> 外文期刊>International journal of aerospace engineering >Aeroacoustic Attenuation Performance of a Helmholtz Resonator with a Rigid Baffle Implemented in the Presence of a Grazing Flow
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Aeroacoustic Attenuation Performance of a Helmholtz Resonator with a Rigid Baffle Implemented in the Presence of a Grazing Flow

机译:Helmholtz谐振器的空气声衰减性能,刚性挡板在放牧流动存在下实施

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To broaden its’ effective frequency range and to improve its transmission loss performance, a modified design of a Helmholtz resonator is proposed and evaluated by implementing a rigid baffle in its cavity. Comparison is then made between the proposed design and the conventional one by considering a rectangular duct with the resonator implemented in the presence of a mean grazing flow. For this, a linearized 2D Navier-Stokes model in frequency domain is developed. After validated by benchmarking with the available experimental data and our experimental measurements, the model is used to evaluate the effects of (1) the width Lp of the rigid baffle, (2) its implementation location/height Hg, (3) its implementation configurations (i.e., attached to the left sidewall or right sidewall), (4) the grazing mean flow Mu (Mach number), and (5) the neck shape on a noise damping effect. It is shown that as the rigid baffle is attached in the 2 different configurations, the resonant frequencies and the maximum transmission losses cannot be predicted by using the classical theoretical formulation ω2=c2S/VLeff, especially as the grazing Mach number Mu is greater than 0.07, i.e., Mu0.07. In addition, there is an optimum grazing flow Mach number corresponding to the maximum transmission loss peak, as the width Lp is less than half of the cavity width Dr, i.e., Lp/Dr≤0.5. As the rigid plate width is increased to Lp/Dr=0.75, one additional transmission loss peak at approximately 400?Hz is produced. The generation of the 12?dB transmission loss peak at 400?Hz is shown to attribute to the sound and structure interaction. Finally, varying the neck shape from the conventional one to an arc one leads to the dominant resonant frequency being increased by approximately 20% and so the secondary transmission loss peak by 2-5?dB. The present work proposes and systematically studies an improved design of a Helmholtz resonator with an additional transmission loss peak at a high frequency, besides the dominant peak at a low frequency.
机译:为了拓宽其“有效频率范围并改善其传输损耗性能,提出了一种通过在其腔中实施刚性挡板来评估和评估亥姆霍兹谐振器的改进设计。然后通过考虑在平均放牧流动存在下实现的谐振器的矩形管道在所提出的设计和传统的设计之间进行比较。为此,开发了频域中的线性化2D Navier-Stokes模型。通过使用可用的实验数据和实验测量的基准测试进行验证,该模型用于评估(1)刚性挡板的宽度LP的效果,(2)其实现位置/高度HG,(3)其实现配置(即,附接到左侧壁或右侧壁),(4)放牧平均流量MU(马赫数),和(5)颈部形状对噪声阻尼效果。结果表明,由于刚性挡板在2个不同的配置中,通过使用经典理论制剂ω2= C2s / vleff,不能预测谐振频率和最大传输损耗,尤其是μmμ大于0.07的放牧马赫,即mu> 0.07。另外,存在与最大传输损耗峰值对应的最佳放牧流动Mach数,因为宽度Lp小于腔宽度Dr,即LP /Dr≤0.5的一半。随着刚性板宽度增加到LP / DR = 0.75,产生大约400℃的一个额外的传输损耗峰值。 12?DB传输损耗峰值处的生成在400℃下被显示为归因于声音和结构交互。最后,将颈部形状从传统的一个变化到一个电弧引线导致主导的共振频率增加约20%,使二次传输损耗峰值增加2-5℃。本工作提出,并系统地研究了Helmholtz谐振器的改进设计,其具有高频的额外传输损耗峰值,除了处于低频时的显性峰。

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