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Application of the SAS turbulence model to predict the unsteady flow field behaviour in a forward centrifugal fan

机译:SAS湍流模型在预测前向离心风机非定常流场特性中的应用

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In the current study, the unsteady flow in a centrifugal fan is carried out using Computational Fluid Dynamics calculation based on the Scale Adaptive Simulation (SAS) approach to model the turbulence phenomenon. The SAS concept is based on the introduction of the von Karman length scale into the turbulence scale equation. The information provided by the von Karman length scale allows SAS models to dynamically adjust to resolved structures in an Unsteady Reynolds-Averaged Navier-Stokes (URANS) simulation, which results in a Large Eddy Simulation-like behaviour in unsteady regions of the flow field. At the same time, the model provides standard RANS capabilities in stable flow regions. The introduction of the von Karman length scale is based on the reformulation of Rottas's equation for the integral length scale. To validate the numerical results, the overall performances of the fan and the wall pressure fluctuations computed upon the volute casing surface are compared with the unsteady measured data.
机译:在当前的研究中,使用基于比例自适应模拟(SAS)方法的计算流体动力学计算对湍流现象进行建模,从而在离心风机中进行非稳态流动。 SAS概念是基于将von Karman长度尺度引入湍流尺度方程中的。 von Karman长度刻度所提供的信息使SAS模型可以在非稳态雷诺平均Navier-Stokes(URANS)模拟中动态调整为可分辨的结构,从而在流场的非稳态区域产生类似于大涡模拟的行为。同时,该模型在稳定流量区域提供了标准RANS功能。 von Karman长度标尺的引入是基于Rottas方程对积分长度标尺的重新表述。为了验证数值结果,将风扇的整体性能和在蜗壳表面上计算出的壁压力波动与不稳定的测量数据进行了比较。

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