论文标题
相干涡流结构在日益湍流的分层剪切层中的演变
The evolution of coherent vortical structures in increasingly turbulent stratified shear layers
论文作者
论文摘要
我们研究了欧拉涡流结构的形态及其与日益湍流稳定分层的剪切层中密度界面的相互作用。我们分析了在分层的倾斜导管实验实验中获得的三维同时速度和密度场。我们在15个数据集中跟踪一致的结构的演变,从前溃疡的Holmboe波,通过间歇性的湍流到完全的湍流和混合。我们将涡旋场的rortex剪切分解用于纯旋转部分(rortex载体)和非旋转部分(剪切矢量)。我们描述了普遍存在的发夹样涡流结构(由Rortex揭示)的形态,类似于边界层湍流中通常观察到的形态。这些诞生是围绕强大的Holmboe波的强三维剪切结构的相对较弱的涡流,并在湍流增加下逐渐增强和变形,转变为剪切层顶部和底部边缘的相反方向传播的一对向上和向下的发夹。每条发夹的双腿都在反向旋转,横向和垂直夹带液体,其拱形的“头”是横向涡旋,垂直夹住了液体。然后,我们阐明了这种大尺度涡流形态如何搅拌并混合密度场。本质上,位于混合层任一边缘的锋利密度界面(主要是发夹头)的涡流中,无混合的液体吞噬了混合层,而混合层内的涡流(主要是发夹腿)进一步搅拌,产生强大的小型剪切,增强混合。这些发现为湍流相干结构在剪切驱动的分层混合中的作用提供了新的见解。
We study the morphology of Eulerian vortical structures and their interaction with density interfaces in increasingly turbulent stably-stratified shear layers. We analyse the three-dimensional, simultaneous velocity and density fields obtained in the stratified inclined duct laboratory experiment. We track, across 15 datasets, the evolution of coherent structures from pre-turbulent Holmboe waves, through intermittent turbulence, to full turbulence and mixing. We use the Rortex--Shear decomposition of the vorticity field into a pure rotational part (the rortex vector), and a non-rotational part (the shear vector). We describe the morphology of ubiquitous hairpin-like vortical structures (revealed by the rortex), similar to those commonly observed in boundary-layer turbulence. These are born as relatively weak vortices around the strong three-dimensional shearing structures of confined Holmboe waves, and gradually strengthen and deform under increasing turbulence, transforming into pairs of upward- and downward-pointing hairpins propagating in opposite directions on the top and bottom edge of the shear layer. Each hairpin's pair of legs are counter-rotating and entrain fluid laterally and vertically, and their arched-up `heads', which are transverse vortices, entrain fluid vertically. We then elucidate how this large-scale vortex morphology stirs and mixes the density field. Essentially, vortices located at the sharp density interface on either edge of the mixing layer (mostly hairpin heads) engulf blobs of unmixed fluid into the mixing layer, while vortices inside the mixing layer (mostly hairpin legs) further stir it, generating strong, small-scale shear, enhancing mixing. These findings provide new insights into the role of turbulent coherent structures in shear-driven stratified mixing.