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Turbulent Statistics from Time-Resolved PIV Measurements of a Jet Using Empirical Mode Decomposition

机译:使用经验模式分解从时间分辨PIV测量的湍流统计

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摘要

Empirical mode decomposition is an adaptive signal processing method that when applied to a broadband signal, such as that generated by turbulence, acts as a set of band-pass filters. This process was applied to data from time-resolved, particle image velocimetry measurements of subsonic jets prior to computing the second-order, two-point, space-time correlations from which turbulent phase velocities and length and time scales could be determined. The application of this method to large sets of simultaneous time histories is new. In this initial study, the results are relevant to acoustic analogy source models for jet noise prediction. The high frequency portion of the results could provide the turbulent values for subgrid scale models for noise that is missed in large-eddy simulations. The results are also used to infer that the cross-correlations between different components of the decomposed signals at two points in space, neglected in this initial study, are important.
机译:经验模式分解是一种自适应信号处理方法,当应用于宽带信号(例如由湍流产生的信号)时,它充当一组带通滤波器。在计算可确定湍流相速度,长度和时间尺度的二阶,两点,时空相关性之前,将此过程应用于来自亚音速喷射的时间分辨的粒子图像测速测量数据。此方法在大量同时时间历史记录中的应用是新的。在此初步研究中,结果与用于喷气噪声预测的声学类比源模型有关。结果的高频部分可以为大涡流模拟中遗漏的噪声的子网格比例模型提供湍流值。该结果还被用来推断在此初步研究中忽略的,在空间的两个点处分解信号的不同分量之间的互相关很重要。

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    Dahl, Milo D.;

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  • 年度 2012
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