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首页> 外文期刊>Flow, Turbulence and Combustion >The Tilting Mechanism of a Longitudinal Vortical Structure in a Homogeneous Shear Flow with and Without Spanwise Rotation
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The Tilting Mechanism of a Longitudinal Vortical Structure in a Homogeneous Shear Flow with and Without Spanwise Rotation

机译:有和没有横向旋转的均质剪切流中纵向涡旋结构的倾斜机理

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A longitudinal vortical structure is typically observed in near-wall turbulence. This vortical structure is elongated in the streamwise direction, though it is also tilted in the spanwise direction. The sense of this spanwise tilting is determined by the sign of the streamwise vorticity associated with the vortex, and longitudinal vortical structures with a different streamwise vorticity become asymmetric (mirror symmetric). The tilting must be due to the combined effects of the non-linear terms and mean spanwise vorticity associated with the mean shear. However, the detailed mechanism of the tilting is not well known. To study the tilting in detail, we performed direct numerical simulations of a homogeneous shear flow where the longitudinal vortical structures similar to those in the near-wall region are observed. In particular, the effects of spanwise system rotation as well as the Reynolds number on the vortical structure are studied. As a result, we found that spanwise system rotation has more marked effects on the vortical structure than the Reynolds number. When the system rotation is imposed in the same direction as the mean spanwise vorticity, the tilting is enhanced, while the system rotation of the opposite direction attenuates it. We also found that when the longitudinal vortical structure is tilted in the spanwise direction, it is sandwiched between the streamwise vorticity of the opposite sign. The cyclonic rotation enhances the streamwise vorticity of the opposite sign, though the longitudinal vortical structure at the center is attenuated. In the anticyclonic case, the streamwise vorticity of the opposite sign almost disappears and the longitudinal vortical structure is isolated from the surrounding flow.
机译:通常在近壁湍流中观察到纵向涡旋结构。尽管该旋涡结构也沿翼展方向倾斜,但沿流向方向伸长。这种翼展方向倾斜的意义由与涡流相关的流向涡旋的符号确定,并且具有不同流向涡旋的纵向涡旋结构变得不对称(镜面对称)。倾斜必须归因于非线性项和与平均剪切力相关的平均展向涡度的综合作用。但是,倾斜的详细机制尚不为人所知。为了详细研究倾斜,我们对均质切变流进行了直接数值模拟,在其中观察到了与近壁区域类似的纵向涡旋结构。特别是,研究了翼展方向系统旋转以及雷诺数对旋涡结构的影响。结果,我们发现翼展方向的系统旋转比雷诺数对旋涡结构的影响更大。当在与平均翼展方向涡度相同的方向上施加系统旋转时,倾斜会增强,而在相反方向的系统旋转会使其衰减。我们还发现,当纵向涡旋结构沿翼展方向倾斜时,它夹在相反符号的沿流向涡旋之间。旋风旋转增强了相反符号的沿流方向的涡旋性,尽管中心的纵向涡旋结构被减弱了。在反气旋的情况下,相反符号的沿流方向的涡旋几乎消失,并且纵向涡旋结构与周围流隔离。

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