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Application of a pressure based CFD code with mass transfer model based on the Rayleigh equation for the numerical simulation of the cavitating flow around a hydrofoil with circular leading edge

机译:基于瑞利方程的基于压力的CFD传质模型在圆形前缘翼型绕空化流数值模拟中的应用

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The most common method for simulating cavitating flows is using the governing flow equations in a form with a variable density and treats both phases as incompressible in combination with a transport equation for the vapour volume fraction. This approach is commonly referred to as volume of fluid method (VoF). To determine the transition of the liquid phase to vapour and vice versa, a relation for the mass transfer is needed. Several models exist, based on slightly differing physical assumptions, for example derivation from the dynamics of single bubbles or large bubble clusters. In our simulation, we use the model of Sauer and Schnerr which is based on the Rayleigh equation. One common problem of all mass transfer models is the use of model constants which often need to be tuned with regard to the examined problem. Furthermore, these models often overpredict the turbulent dynamic viscosity in the two-phase region which counteracts the development of transient shedding behaviour and is compensated by the modification proposed by Reboud. In the presented study, we vary the parameters of the Sauer-Schnerr model with Reboud modification that we implemented into an OpenFOAM solver to match numerical to experimental data.
机译:模拟空化流的最常见方法是使用具有可变密度形式的控制流方程,并将两相与蒸汽体积分数的输运方程结合起来视为不可压缩。这种方法通常称为流体体积法(VoF)。为了确定液相向蒸气的转变,反之亦然,需要质量传递的关系。存在一些基于稍微不同的物理假设的模型,例如从单个气泡或大气泡团簇的动力学推导而来。在我们的仿真中,我们使用基于瑞利方程的Sauer和Schnerr模型。所有传质模型的一个普遍问题是使用模型常数,该常数通常需要针对所研究的问题进行调整。此外,这些模型通常会高估两相区域的湍动粘度,这会抵消瞬态脱落行为的发展,并由Reboud提出的修改方法进行了补偿。在本研究中,我们通过Reboud修改来更改Sauer-Schnerr模型的参数,并将其实现到OpenFOAM求解器中,以将数值与实验数据进行匹配。

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