Review of Causes and Mitigation of Cavity Noise in Machinery and Other Mechanisms

Frank Kushner
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Abstract

Two significant causes of noise related to cavities are direct and indirect flow induced turbulence/vortex shedding mechanisms. Examples of induced noise can be found in many applications of both closed-flow and open-flow cavities — some with resonance of acoustic modes. An example is a flow valve with a cavity where flow along the cavity gives pulsations either trapped within the valve or exciting downstream piping acoustic modes. There are passive methods of mitigation besides detuning such as modification of the entrance to the cavity, blockage, and use of Helmholtz resonators. Natural frequencies of cavity acoustic modes can be irregular, but for many such as with circular, square, rectangular or axisymmetric shapes can give symmetry of modes. An example is a cavity at the sides of rotating disks, where transverse symmetrical modes having circular and diametric patterns are similar to structural vibratory modes for bladed disks. In the last decade it has been documented that for centrifugal compressors blade passing acoustic pressure pulsation due to Tyler-Sofrin spinning modes can add to alternating stress from non-uniform flow excitation, such as from stator wakes. Cavity acoustic mode excitation then has been termed “triple coincidence” or “triple crossing”, explaining rare documented impeller fatigue failures and likely a reason, at least partially, for some unexplained failures. A novel method described herein is to treat these and similar cavities as fluid-filled disks, then utilize or add blade-like elements within the cavities. The method described (patent application, PCT US1820880) to reduce response of these cavities is to intentionally mistune the elements as has been documented for bladed disk modes. Other applications of this method are possible for many other mechanisms. These modification(s) can alleviate concern for any mechanism having structural vibration excitation acoustically and/or for environmental noise issues.
机械及其他机械的空腔噪音成因及纾缓措施综述
与空腔有关的噪声的两个重要原因是直接和间接流动引起的湍流/旋涡脱落机制。在许多闭流和开流腔的应用中都可以找到诱发噪声的例子,其中一些与声学模式的共振有关。一个例子是带有腔体的流量阀,其中沿腔体流动产生脉动,或者被困在阀内,或者激发下游管道的声学模式。除失谐外,还有一些被动的缓解方法,如修改腔入口、堵塞和使用亥姆霍兹谐振器。腔声模态的固有频率可以是不规则的,但对于许多诸如圆形、方形、矩形或轴对称形状的腔声模态可以具有对称性。一个例子是旋转圆盘侧面的空腔,其中具有圆形和直径图案的横向对称模态类似于叶片圆盘的结构振动模态。在过去的十年中,已经有文献表明,对于离心式压气机,由于泰勒-索弗林旋转模式引起的叶片通过声压脉动会增加来自非均匀流动激励(如定子尾迹)的交变应力。然后,腔声模激励被称为“三重巧合”或“三重交叉”,解释了罕见的叶轮疲劳失效,并且可能是一些无法解释的失效的原因,至少部分原因。本文所描述的一种新方法是将这些和类似的腔处理为充满流体的盘,然后在腔内利用或添加叶片状元件。所描述的减少这些空腔响应的方法(专利申请,PCT US1820880)是故意将元件与已记录的叶片盘模式相混淆。这种方法的其他应用可能用于许多其他机制。这些改进可以减轻对任何具有结构振动激励的机制的声学和/或环境噪声问题的关注。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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