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Measurement and Simulation of Surface Roughness Noise Using Phased Microphone Arrays

机译:相控阵麦克风阵列对表面粗糙度噪声的测量与仿真

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摘要

A turbulent boundary-layer flow over a rough wall generates a dipole sound field as the near-field hydrodynamic disturbances in the turbulent boundary-layer scatter into radiated sound at small surface irregularities. In this paper, phased microphone arrays are applied to the measurement and simulation of surface roughness noise. The radiated sound from two rough plates and one smooth plate in an open jet is measured at three streamwise locations, and the beamforming source maps demonstrate the dipole directivity. Higher source strengths can be observed on the rough plates which also enhance the trailing-edge noise. A prediction scheme in previous theoretical work is used to describe the strength of a distribution of incoherent dipoles and to simulate the sound detected by the microphone array. Source maps of measurement and simulation exhibit satisfactory similarities in both source pattern and source strength, which confirms the dipole nature and the predicted magnitude of roughness noise. However, the simulations underestimate the streamwise gradient of the source strengths and overestimate the source strengths at the highest frequency.
机译:粗糙壁上的湍流边界层流会产生偶极子声场,这是因为湍流边界层中的近场流体动力扰动会以较小的表面不规则性散射为辐射声。本文将相控麦克风阵列应用于表面粗糙度噪声的测量和仿真。在三个射流位置测量了一个开放射流中两个粗糙板和一个光滑板的辐射声,并且波束形成源图证明了偶极子方向性。可以在粗糙板上观察到更高的光源强度,这也会增强后缘噪声。先前的理论工作中的预测方案用于描述非相干偶极子分布的强度并模拟麦克风阵列检测到的声音。测量和模拟的源图在源模式和源强度方面都显示出令人满意的相似性,这证实了偶极子性质和粗糙度噪声的预测大小。但是,这些模拟低估了源强度的沿流方向的梯度,并高估了最高频率下的源强度。

著录项

  • 作者

    Liu, Y; Dowling, AP; Shin, HC;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
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