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Large Eddy Simulation of Pulsatile Flow through a Channel with Double Constriction

机译:双重收缩通道脉动流动的大涡模拟

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摘要

Pulsatile flow in a 3D model of arterial double stenoses is investigated using a large eddy simulation (LES) technique. The computational domain that has been chosen is a simple channel with a biological-type stenosis formed eccentrically on the top wall. The pulsation was generated at the inlet using the first four harmonics of the Fourier series of the pressure pulse. The flow Reynolds numbers, which are typically suitable for a large human artery, are chosen in the present work. In LES, a top-hat spatial grid-filter is applied to the Navier–Stokes equations of motion to separate the large-scale flows from the sub-grid scale (SGS). The large-scale flows are then resolved fully while the unresolved SGS motions are modelled using a localized dynamic model. It is found that the narrowing of the channel causes the pulsatile flow to undergo a transition to a turbulent condition in the downstream region; as a consequence, a severe level of turbulent fluctuations is achieved in these zones. Transitions to turbulent of the pulsatile flow in the post stenosis are examined through the various numerical results, such as velocity, streamlines, wall pressure, shear stresses and root mean square turbulent fluctuations.
机译:使用大涡模拟(LES)技术研究了动脉双狭窄3D模型中的搏动流。选择的计算域是一个简单的通道,在顶壁上偏心地形成了生物型狭窄。使用压力脉冲的傅里叶级数的前四个谐波在进口处产生脉动。在当前工作中选择通常适合于大人类动脉的流雷诺数。在LES中,对Navier–Stokes运动方程式应用了大礼帽式空间网格过滤器,以将大流量与子网格比例(SGS)分开。然后完全解析大规模流,而使用局部动态模型对未解析的SGS运动进行建模。已经发现,通道的变窄导致脉动流在下游区域经历到湍流状态的转变。结果,在这些区域中实现了严重的湍流波动。通过各种数值结果(例如速度,流线,壁压力,剪切应力和均方根湍流波动)检查狭窄后脉动流向湍流的过渡。

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