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Influence of vortex-pairing location on the three-dimensional evolution of plane mixing layers

机译:涡流配对位置对平面混合层三维演化的影响

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摘要

Detailed three-dimensional measurements of the first vortex pairing of a large plane mixing layer reveal excitation of several three-dimensional instability modes. Time evolution in three-dimensional space (x, y, z, t) shows how the two-dimensional rollers become three-dimensional as they approach each other and that the linear growth of at least two instability waves leads to a spanwise periodic pairing. The results are based on phase-locked measurements made in three-dimensional spatial grids, with a mesh spacing of 8.5% of the fundamental instability wavelength. Spanwise-uniform, periodic acoustic excitation stabilizes the most probable two-dimensional natural features - roll-up and first pairing. The second subharmonic is added to study the effect of alternate streamwise pairing locations on the three-dimensional characteristics of vortex pairing. Velocities are measured using hot-wire anemometry, and the coherent structures are reconstructed from the ensemble-averaged vorticity field. Vortex pairing is shown to initiate through local 'bridging' at the maxima of periodic spanwise undulations. The undulations result from linear amplification of various instability modes on pairing rollers having different strengths. Bridging results from the change of the relative phase between the spanwise undulations of the pairing rollers from in-phase (due to the initial translative mode) to out-of-phase (due to the amplification of bulging-like and non-axisymmetric modes). It is found that when pairing occurs sufficiently far upstream, only axisymmetric waves are amplified and the evolution results in axisymmetric merging. In contrast, when pairing occurs sufficiently far downstream, both axisymmetric and non-axisymmetric waves are amplified and the evolution results in non-axisymmetric merging. The results indicate that vortex pairing is accompanied by the counter-rotating pairs of secondary structures ('streamwise vortices' or 'ribs') located in the mixing-layer braids and residing in the valleys of the spanwise-roller waves. Time evolution of these secondary structures shows that they move in the transverse direction, following the rollers. [References: 45]
机译:大平面混合层的第一个涡旋对的详细三维测量揭示了几种三维不稳定性模式的激发。三维空间(x,y,z,t)中的时间演化表明,二维滚子在彼此接近时是如何变为三维的,并且至少两个不稳定波的线性增长会导致跨度的周期性配对。结果基于在三维空间网格中进行的锁相测量,网格间距为基本不稳定波长的8.5%。跨度均匀,周期性的声激励稳定了最可能的二维自然特征-上滚和首次配对。添加了第二次谐波,以研究交替流向配对位置对涡流配对三维特征的影响。使用热线风速仪测量速度,并从整体平均涡度场重建相干结构。涡旋配对显示为通过周期性“跨度”波动最大值处的局部“桥接”启动。起伏起因于具有不同强度的成对辊上各种不稳定性模式的线性放大。桥接的原因是配对辊的跨度波动之间的相对相位从同相(由于初始平移模式)到异相(由于凸出状和非轴对称模式的放大)的变化。发现当配对发生在足够远的上游时,仅轴对称波被放大,并且演化导致轴对称合并。相反,当配对发生在足够远的下游时,轴对称波和非轴对称波都会被放大,并且演化会导致非轴对称合并。结果表明,涡流配对伴随着位于混合层辫带中并位于展向滚子波谷中的二级结构(“向流涡流”或“肋”)的反向旋转对。这些二级结构的时间演变表明它们沿横向运动,跟随滚子。 [参考:45]

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