侧支路与主线驻波的相互作用及相关信号处理方法

Q2 Physics and Astronomy Advances in Acoustics and Vibration Pub Date : 2013-03-24 DOI:10.1155/2013/487141
A. Ruggles, E. Moore, Michael Shehane
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引用次数: 0

摘要

利用低压空气试验装置的数据,定量分析了主干线内声场对侧支路谐振特性的影响。直径为7.6 cm的主干线可以积累直径为1.9 cm(= 0.25)的共振支路传播的声能。侧支路共振幅值与主干支路位置有较强的函数关系,最有利支路位置的归一化压力上升至1.2,Strouhal数接近0.3。在大多数支路位置,侧支路和主线共振幅度随时间变化较大。在时间历史上使用移动窗口来收集功率谱密度(psd)阵列。来自PSD阵列的峰值幅度值以概率密度函数(PDF)表示,该函数提供了系统数据的可重复表征。
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Side Branch Interaction with Main Line Standing Waves and Related Signal Handling Approaches
Data from a low pressure air test facility are used to quantify the influence of the acoustic field in the main line on side branch resonance behavior. The main line of diameter = 7.6 cm may accumulate acoustic energy broadcast from a resonating branch of diameter = 1.9 cm ( = 0.25). The side branch resonance amplitude is a strong function of branch position along the main line with the normalized pressure rising to 1.2 in the most favorable branch positions with Strouhal number near 0.3. Large time variation of the side branch and main line resonance amplitude is apparent for most branch positions. A moving window is used on the time history to collect an array of power spectral densities (PSDs). Peak amplitude values from the PSD array are represented in a probability density function (PDF) that provides a repeatable characterization of data from the system.
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期刊介绍: The aim of Advances in Acoustics and Vibration is to act as a platform for dissemination of innovative and original research and development work in the area of acoustics and vibration. The target audience of the journal comprises both researchers and practitioners. Articles with innovative works of theoretical and/or experimental nature with research and/or application focus can be considered for publication in the journal. Articles submitted for publication in Advances in Acoustics and Vibration must neither have been published previously nor be under consideration elsewhere. Subject areas include (but are not limited to): Active, semi-active, passive and combined active-passive noise and vibration control Acoustic signal processing Aero-acoustics and aviation noise Architectural acoustics Audio acoustics, mechanisms of human hearing, musical acoustics Community and environmental acoustics and vibration Computational acoustics, numerical techniques Condition monitoring, health diagnostics, vibration testing, non-destructive testing Human response to sound and vibration, Occupational noise exposure and control Industrial, machinery, transportation noise and vibration Low, mid, and high frequency noise and vibration Materials for noise and vibration control Measurement and actuation techniques, sensors, actuators Modal analysis, statistical energy analysis, wavelet analysis, inverse methods Non-linear acoustics and vibration Sound and vibration sources, source localisation, sound propagation Underwater and ship acoustics Vibro-acoustics and shock.
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