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AEROACOUSTIC SOURCE CHARACTERIZATION TECHNIQUE APPLIED TO A CYLINDRICAL HELMHOLTZ RESONATOR

机译:喷气沟源表征技术应用于圆柱亥姆霍尔兹谐振器

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The aim of this work is to investigate the sound produced by a Helmholtz resonator excited by a boundary layer. A deep cylindrical cavity with a small rectangular opening was designed to allow Helmholtz resonance as well as longitudinal and azimuthal acoustic modes within the cavity to be excited by varying the wind tunnel flow speed. Experiments performed show how lock-on between each of these three acoustic resonances and the shear layer hydrodynamic modes can been generated. The pressure measured by means of a microphone flush mounted with the internal surface of the cavity wall is used to phase-average the planar Particle Image Velocimetry (PIV) data in the shear layer region. The acoustic energy generated is calculated by applying the vortex sound theory developed by Powell and modified by Howe for its application to wall bounded flows. Practically, this can be achieved by extracting the flow velocity and vorticity the from the PIV data and by computing numerically the acoustic particle velocity field. The acoustic sources are localised in space and quantified over an acoustic period providing insight into the sound production of flow-excited cylindrical cavities.
机译:这项工作的目的是研究通过由边界层激发的亥姆霍兹共振器产生的声音。用小矩形开口深圆柱形腔被设计为允许在所述腔内亥姆霍兹共鸣以及纵向和方位角声模到通过改变风洞流速激发。实验进行示出了如何锁定在这三个声谐振和剪切层的流体动力学模式之间可以被生成。安装有所述空腔壁的内表面由麦克风冲洗的装置测量的压力被用于相位平均平面粒子图像测速仪(PIV)数据在剪切层区域。所产生的声能是通过将涡旋声音理论鲍威尔开发和豪其应用到壁界定流动改性计算。实际上,这可以通过提取从PIV数据流速和涡度的和由数值计算的声质点速度场来实现。该声源被定位于空间和在声学周期洞察声音产生流激发圆柱形腔的定量。

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