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Stop Whistling! A Note on Fluid Driven Whistles in Flow Ducts

机译:停止吹口哨!关于流动管道流体驱动吹口哨的笔记

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The generation mechanism and possible counter measures for fluid driven whistles in low Mach number flow duct networks are discussed. The vortex sound model, where unstable shear layers interact with the acoustic field and act as amplifiers under certain boundary conditions, is shown to capture the physics well. Further, for the system to actually whistle an acoustic feedback to the amplifying shear layer is also needed. The demonstration example in this study is a generalized resonator configuration with annular volumes attached to a straight flow duct via a number of small holes, perforations, around the duct’s circumference. At each hole a shear layer is formed and the acoustic reflections from the resonator volumes and the up and downstream sides provides a possible feedback to them. Not only the Helmholtz mode but also ring modes in the annular volumes provide a feedback to sustain whistles. The attenuation properties as well as the whistling frequencies at varying inlet mean flow velocities for this system are studied both numerically and experimentally showing that good quality predictive simulations are possible using the vortex sound theory. Finally a few countermeasures against whistling are tested. Both the feedback and the shear layers are manipulated. Best effect was found disturbing the shear layers by covering the holes with a coarse mesh.
机译:讨论了低马赫数流管网中流体驱动吹口阀的产生机制和可能的反措施。涡流声型号,其中不稳定的剪切层与声场相互作用,并在某些边界条件下充当放大器,显示井拍摄物理。此外,对于系统实际呈向放大剪切层的声反馈。本研究中的示范例子是广义谐振器构造,其具有通过多个小孔,穿孔,在管道周围通过多个小孔附接到直流管道的环形体积。在每个孔处形成剪切层,并且来自谐振器容积和上游侧的声反射提供给它们的可能反馈。不仅是亥姆霍兹模式,而且环形卷中的环形模式提供了维持口哨的反馈。在数值上研究了该系统的变化入口平均流速下的衰减特性以及吹口哨频率,并通过涡旋声音理论来实验显示良好的质量预测模拟。最后测试了一些针对吹口哨的对策。反馈和剪切层都被操纵。通过用粗滤网覆盖孔,发现了最佳效果扰乱剪切层。

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