论文标题

超音速湍流在正弦粗糙的壁上

Supersonic turbulent flows over sinusoidal rough walls

论文作者

Jouybari, Mostafa Aghaei, Yuan, Junlin, Li, Zhaorui, Brereton, Giles J., Jaberi, Farhad A.

论文摘要

进行直接的数值模拟,以表征完全开发的超音速湍流通道流在等温壁上。使用液位/流体浸入式边界方法进行了粗糙度的效果。比较了五个通道流的湍流统计数据,包括一个参考案例,墙壁平滑,四个案例具有光滑的顶壁和底部壁,具有二维(2D)和三维(3D)正弦曲线。结果表明,湍流对粗糙度地形和相关的冲击模式有很强的依赖性。具体而言,2D几何形状会产生强大的倾斜冲击波,从而在整个通道上传播,并反射回粗壁侧。这些强烈的冲击在平滑墙通道中不存在,并且在3D粗糙度几何形状的情况下明显较弱,取而代之的是弱冲击。在2D粗糙度案例中,在顶壁上的冲击的撞击位置,观察到湍流剪切产生的局部增强。在3D病例中,也存在此类增强产量的区域,其水平要弱得多。倾斜的冲击波被认为是比具有3D表面的病例更重要的熵产生的原因,导致不可逆的热产生更高,因此在2D粗糙度案例中,温度值更高。在当前的超音速通道中,由于冲击,粗糙度的影响延伸到近壁层之外。这表明外层相似性可能无法完全应用于粗壁超音速湍流。

Direct numerical simulations were performed to characterize fully developed supersonic turbulent channel flows over isothermal rough walls. The effect of roughness was incorporated using a level-set/volume-of-fluid immersed boundary method. Turbulence statistics of five channel flows are compared, including one reference case with both walls smooth and four cases with smooth top walls and bottom walls with two-dimensional (2D) and three-dimensional (3D) sinusoidal roughnesses. Results reveal a strong dependence of the turbulence on the roughness topography and the associated shock patterns. Specifically, the 2D geometries generate strong oblique shock waves that propagate across the channel and are reflected back to the rough-wall side. These strong shocks are absent in the smooth-wall channel and are significantly weaker in cases with 3D roughness geometries, replaced by weak shocklets. At the impingement locations of the shocks on the top wall in the 2D roughness cases, localized augmentations of turbulence shear production are observed. Such regions of augmented production also exist for the 3D cases, at a much weaker level. The oblique shock waves are thought to be responsible for a more significant entropy generation for cases with 2D surfaces than those with 3D ones, leading to a higher irreversible heat generation and consequently higher temperature values in 2D roughness cases. In the present supersonic channels, the effects of roughness extend beyond the near-wall layer due to the shocks. This suggests that outer layer similarity may not fully apply to a rough-wall supersonic turbulent flow.

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