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Instability wave models for the near-field fluctuations of turbulent jets

机译:湍流射流近场波动的不稳定性波模型

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摘要

Previous work has shown that aspects of the evolution of large-scale structures, particularly in forced and transitional mixing layers and jets, can be described by linear and nonlinear stability theories. However, questions persist as to the choice of the basic (steady) flow field to perturb, and the extent to which disturbances in natural (unforced), initially turbulent jets may be modelled with the theory. For unforced jets, identification is made difficult by the lack of a phase reference that would permit a portion of the signal associated with the instability wave to be isolated from other, uncorrelated fluctuations. In this paper, we investigate the extent to which pressure and velocity fluctuations in subsonic, turbulent round jets can be described as linear perturbations to the mean flow field. The disturbances are expanded about the experimentally measured jet mean flow field, and evolved using linear parabolized stability equations (PSE) that account, in an approximate way, for the weakly non-parallel jet mean flow field. We utilize data from an extensive microphone array that measures pressure fluctuations just outside the jet shear layer to show that, up to an unknown initial disturbance spectrum, the phase, wavelength, and amplitude envelope of convecting wavepackets agree well with PSE solutions at frequencies and azimuthal wavenumbers that can be accurately measured with the array. We next apply the proper orthogonal decomposition to near-field velocity fluctuations measured with particle image velocimetry, and show that the structure of the most energetic modes is also similar to eigenfunctions from the linear theory. Importantly, the amplitudes of the modes inferred from the velocity fluctuations are in reasonable agreement with those identified from the microphone array. The results therefore suggest that, to predict, with reasonable accuracy, the evolution of the largest-scale structures that comprise the most energetic portion of the turbulent spectrum of natural jets, nonlinear effects need only be indirectly accounted for by considering perturbations to the mean turbulent flow field, while neglecting any non-zero frequency disturbance interactions.
机译:先前的工作表明,大型结构演化的各个方面,尤其是在强迫和过渡混合层和射流中,可以通过线性和非线性稳定性理论来描述。但是,对于选择基本(稳定)流场进行扰动以及自然(无力)初始湍流射流的扰动程度可以用该理论建模的问题仍然存在。对于无力射流,由于缺乏相位参考而使识别变得困难,因为相位参考将使与不稳定波相关的信号的一部分与其他不相关的波动隔离开来。在本文中,我们研究了亚音速湍流圆形射流中压力和速度波动的程度,可将其描述为对平均流场的线性扰动。扰动在实验测量的射流平均流场周围扩展,并使用线性抛物线稳定方程(PSE)演变,该方程近似地解释了弱非平行射流平均流场。我们利用来自广泛的传声器阵列的数据来测量射流剪切层外部的压力波动,以表明,直到未知的初始扰动谱为止,对流波包的相位,波长和幅度包络与频率和方位角上的PSE解决方案都非常吻合阵列可以精确测量的波数。接下来,我们将适当的正交分解应用于使用粒子图像测速仪测量的近场速度波动,并表明大多数高能模式的结构也与线性理论中的本征函数相似。重要的是,从速度波动推断出的模式振幅与从麦克风阵列识别出的模式振幅合理地一致。因此,结果表明,要以合理的准确性预测组成自然射流湍流谱中最活跃的部分的最大尺度结构的演化,只需考虑对平均湍流的扰动即可间接考虑非线性效应流场,而忽略了任何非零频率干扰的相互作用。

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