轴向过境流环形腔中的声共振

IF 1 4区 工程技术 Q4 MECHANICS Fluid Dynamics Pub Date : 2024-11-07 DOI:10.1134/S0015462824602791
E. V. Kolesnik, D. K. Zaitsev, E. M. Smirnov, E. I. Shmelev, M. G. Maslov, A. V. Budnikov
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摘要

本文给出了对局部变窄的圆形管道周围环形空腔中的声学自振荡进行计算和实验研究的结果。在实验中,测量了不同体积流量下环形空腔外壁的压力波动;空气以大气压力进入管道。结果发现,在一定的流速范围内,空腔中的声学自振荡激发流动机制得以实现。振荡频率与第一固有频率一致,压力波动的均方根值达到 2300 Pa。根据 RANS 方法对实验的几何形状和条件进行的数值模拟再现了观察到的空腔声激励效应,并给出了类似的波动幅度值。根据获得的计算数据,分析了在不同容积流量下形成的振荡模式。
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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Acoustic Resonance in an Annular Cavity with Axial Transit Flow

The results of a consistent computational and experimental study of acoustic self-oscillations in an annular cavity surrounding a circular pipe with a local narrowing are given. In the experiment, pressure fluctuations were measured on the outer wall of the annular cavity for various volume flow rates; air entered the pipe at the atmospheric pressure. It was found that the flow regime with excitation of acoustic self-oscillations in the cavity is implemented in a certain range of flow rates. The oscillation frequency corresponds to the first natural frequency, and the root-mean-square values of pressure fluctuations reach a level of 2300 Pa. Numerical simulation based on the RANS approach, carried out for the geometry and conditions of experiment, reproduces the observed effect of acoustic excitation of the cavity and gives similar values of the fluctuation amplitude. The oscillation modes developed at various volumetric flow rates are analyzed based on the obtained calculated data.

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来源期刊
Fluid Dynamics
Fluid Dynamics MECHANICS-PHYSICS, FLUIDS & PLASMAS
CiteScore
1.30
自引率
22.20%
发文量
61
审稿时长
6-12 weeks
期刊介绍: Fluid Dynamics is an international peer reviewed journal that publishes theoretical, computational, and experimental research on aeromechanics, hydrodynamics, plasma dynamics, underground hydrodynamics, and biomechanics of continuous media. Special attention is given to new trends developing at the leading edge of science, such as theory and application of multi-phase flows, chemically reactive flows, liquid and gas flows in electromagnetic fields, new hydrodynamical methods of increasing oil output, new approaches to the description of turbulent flows, etc.
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