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Aeroacoustic noise prediction and the dynamics of shear layers and jets using the nonlinear parabolized stability equations.

机译:使用非线性抛物线稳定性方程预测空气声噪声以及剪切层和射流的动力学。

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摘要

The study of jet noise has long remained an important problem due to the challenges of accurately predicting aeroacoustic noise, and the practical consequences of environmental noise pollution. Previous investigations into jet noise have relied on large scale Direct Numerical Simulations (DNS) or Large Eddy Simulations (LES) to resolve the relevant scales and features of the problem, but their relatively high computational cost is prohibitive. In this study, we present a more efficient method to predict aeroacoustic radiation based on the Parabolized Stability Equations (PSE), which seek to represent flow disturbances as a set of slowly evolving instability waves. As applied in our work, the PSE is used to compute the near field hydrodynamics and noise sources in the problem, which can then be coupled to an acoustic analogy approach to predict the far field noise. For slowly developing flows where the PSE approximations are valid, we find that using the hybrid PSE-acoustic analogy method results in predictions with accuracy similar to DNS, but with an order of magnitude improvement in speed.; This method is first applied to subsonic and supersonic compressible two-dimensional shear layers, both with and without heating effects. For supersonic shear layers we find the PSE method itself captures the Mach wave radiation in the far-field, as well as the large scale phenomena occurring inside the shear layer. In the computations of the subsonic cases, we observe that the PSE solution captures the near field hydrodynamics and underpredicts the acoustic radiation. However, when combined with Lilley's acoustic analogy, reasonable agreement is found with DNS calculations. When this method is applied to supersonic and subsonic jet flows, similar results are also obtained.; In the last portion of this study, we present an extension to the PSE that is based on the method of multiple scales. We show how the multiple scale PSE method can be used to handle more general inlet forcing schemes and capture additional frequencies not present in the traditional nonlinear PSE approach. This extended method is also applied to supersonic and subsonic shear layers, and compared to results from DNS calculations.
机译:由于准确预测空气声噪声的挑战以及环境噪声污染的实际后果,喷气噪声的研究长期以来一直是一个重要的问题。先前对喷射噪声的研究依靠大规模直接数值模拟(DNS)或大型涡流模拟(LES)来解决问题的相关规模和特征,但是它们相对较高的计算成本令人望而却步。在这项研究中,我们提出了一种基于抛物稳定方程(PSE)的更有效的方法来预测空气声辐射,该方程试图将流动扰动表示为一组缓慢发展的不稳定波。在我们的工作中,PSE用于计算问题中的近场流体动力学和噪声源,然后可以将其与声学类比方法耦合以预测远场噪声。对于使用PSE近似值有效的缓慢发展的流程,我们发现使用混合PSE声学类比方法得出的预测结果的准确性与DNS相似,但速度提高了一个数量级。此方法首先应用于具有和不具有加热效果的亚音速和超音速可压缩二维剪切层。对于超音速剪切层,我们发现PSE方法本身捕获了远场中的马赫波辐射,以及在剪切层内部发生的大规模现象。在亚音速情况下的计算中,我们观察到PSE解决方案捕获了近场流体动力学,并低估了声辐射。但是,当与Lilley的声学比喻结合使用时,可以发现DNS计算具有合理的一致性。当将此方法应用于超音速和亚音速射流时,也可获得类似的结果。在本研究的最后一部分,我们提出了一种基于多尺度方法的PSE扩展。我们展示了如何使用多尺度PSE方法来处理更通用的入口强制方案并捕获传统非线性PSE方法中不存在的其他频率。此扩展方法也适用于超音速和亚音速剪切层,并与DNS计算的结果进行比较。

著录项

  • 作者

    Cheung, Lawrence C.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:40:32

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