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考 虑 剪 切 流 的 航 空 声 衬 三 维 阻 抗 直 接 提 取 方 法

  • Lingfeng Chen
  • , Yunxiao Han
  • , Boyu Feng
  • , Zhiliang Hong*
  • , Xiaoyu Wang
  • , Lin Du
  • *此作品的通讯作者
  • Civil Aviation University of China

科研成果: 期刊稿件文章同行评审

摘要

The development of broadband acoustic liners requires taking the three-dimensional acoustic field into con⁃ sideration in impedance eduction. However,in existing three-dimensional impedance eduction methods,the grazing flow is generally assumed to be uniform,which is inconsistent with the actual situation of shear flow in flow ducts. To simultaneously solve the problems of three-dimensional acoustic field and shear grazing flow in acoustic liner imped⁃ ance eduction,a three-dimensional straightforward method considering a one-dimensional equivalent shear flow is de⁃ veloped. Using sound pressure data from a rectangular array of measuring points arranged on the rigid wall opposite to the liner surface,spanwise modal decomposition is firstly conducted to obtain intermediate variables,which can then be solved through Runge-Kutta iteration to compute the axial wavenumber. Finally,impedance is educed accord⁃ ing to the impedance boundary conditions. The accuracy of this method is verified through numerical simulation experi⁃ ments based on the finite element method for both plane-wave and plane-wave dominant incidence. By comparing the educed impedances with and without considering the shear grazing flow,it can be found that although shear flow has a relatively small impact on impedance eduction in the mid to low frequency range below the cutoff frequency,it may significantly affect the accuracy of the eduction result in the high frequency range. Moreover,as the flow Mach number increases,the influence of shear flow becomes more important.

投稿的翻译标题A three-dimensional straightforward method for acoustic liner impedance eduction under shear grazing flow
源语言繁体中文
文章编号630333
期刊Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica
45
23
DOI
出版状态已出版 - 15 12月 2024

关键词

  • aviation acoustic liner
  • broadband
  • impedance eduction
  • shear flow
  • three-dimensional sound field

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