The structure and dynamics of bubble-type vortex breakdown

R. Spall, T. Gatski, R. Ash
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引用次数: 70

Abstract

A unique discrete form of the Navier-Stokes equations for unsteady, three-dimensional, incompressible flow has been used to study vortex breakdown numerically. A Burgers-type vortex was introduced along the central axis of the computational domain, and allowed to evolve in space and time. By varying the strength of the vortex and the free stream axial velocity distribution, using a previously developed Rossby number criterion as a guide, the location and size of the vortex breakdown region was controlled. While the boundaries of the vortex breakdown bubble appear to be nominally symmetric, the internal flow field is not. Consequently, the mechanisms for mixing and entrainment required to sustain the bubble region are different from those suggested by earlier axisymmetric models. Results presented in this study, for a Reynolds number of 200, are in good qualitative agreement with higher Reynolds number experimental observations, and a variety of plots have been presented to help illuminate the fluid physics.
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气泡型涡旋击穿的结构与动力学
采用非定常三维不可压缩流动的Navier-Stokes方程的一种独特离散形式,对涡旋击穿进行了数值研究。沿着计算域的中轴线引入了一个汉堡型涡旋,并允许在空间和时间上进化。通过改变涡旋强度和自由流轴向速度分布,利用先前开发的罗斯比数准则作为指导,控制了涡旋击穿区域的位置和大小。虽然名义上涡破裂泡的边界是对称的,但内部流场却不是对称的。因此,维持气泡区域所需的混合和夹带机制与早期轴对称模型所提出的机制不同。在雷诺数为200的情况下,本研究的结果与更高雷诺数的实验结果在定性上是一致的,并且已经提出了各种各样的图来帮助阐明流体物理。
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