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Long Elastic Open Neck Acoustic Resonator in flow

机译:流量的长弹开关声学谐振器

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Passive acoustic liners, used in aeronautic engine nacelles to reduce radiated fan noise, have a Quarter-wavelength behavior, thanks to perforated sheets backed to honeycombs (SDOF, DDOF). So, their acoustic absorption ability is naturally limited to medium and high frequencies because of constraints in thickness. The ratio "plate thickness/hole diameter" usually centred around 1 generates impedance levels dependent on the incident sound pressure level (SPL) and on the grazing mean flow (by a nonlinear dissipation mechanism of vortex shedding), which penalises the optimal design of liners. Moreover, their physical law is not suited to an absorption to the lowest frequencies, as needed for future Ultra High Bypass Ratio engines with shorter and thinner nacelles (frequencies around 500 Hz). A possible approach could be to link the perforated panel with tubes introduced in the cavity, to shift the resonance frequency to a lower frequency by a prolongation of air column length. Applied for an aeronautical liner, the resonance frequency decreases considerably compared to classical resonator (factor of about 1/5). The aim of this paper is to describe mathematically this type of concept called LEONAR ("Long Elastic Open Neck Acoustic Resonator) and to validate experimentally its linear behaviour according to SPL and flow.
机译:无源声学衬垫,在航空发动机短舱用于减少辐射的风扇噪音,具有四分之一波长的行为,由于多孔板背靠蜂窝(单自由度,DDOF)。所以,它们的吸声能力自然受到限制,因为在厚度的限制的中频和高频。比率“板厚/孔直径”通常为约1为中心产生依赖于入射的声压水平(SPL)和对放牧平均流量(由脱落涡旋的非线性耗散机理),该惩罚衬里的优化设计阻抗水平。此外,根据需要为未来具有较短和更薄机舱(大约500赫兹的频率)超高涵道比发动机它们的物理定律是不适合的吸收到最低频率,。一种可能的方法可以是将穿孔板与空腔内引入管连结,通过空气柱的长度的延长谐振频率偏移到较低的频率。应用于航空衬垫时,谐振频率减小相当相比古典谐振器(大约1/5因子)。本文的目的是数学上描述这种类型的概念称为LEONAR(“弹性长开口颈部声波谐振器),并以实验根据SPL和流动验证其线性特性。

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