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Filter-based unsteady RANS computations

机译:基于过滤器的非稳态RANS计算

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The Reynolds-averaged Navier-Stokes (RANS) approach has been popular for engineering turbulent flow computations. The most widely used ones, such as the κ ― ε two-equation model, have well-recognized deficiencies when treating time dependent flow fields. To identify ways to improve the predictive capability of the current RANS-based engineering turbulence closures, conditional averaging is adopted for the Navier-Stokes equation, and one more parameter, based on the filter size, is introduced into the κ ― ε model. The sub-filter stresses are constructed directly by using the filter size and the conventional turbulence closure. The filter is decoupled from the grid, making it possible to obtain grid independent solutions with a fixed filter scale. The model is assessed in transient, planar turbulent wake flow simulations over a square cylinder utilizing progressively refined grid. In comparison to the standard κ ― ε model, overall, the filter-based model is shown to improve the predictive capability considerably.
机译:雷诺平均Navier-Stokes(RANS)方法已广泛用于工程湍流计算。在处理时变流场时,使用最广泛的方法(例如κεε两方程模型)存在公认的缺陷。为了确定提高当前基于RANS的工程湍流闭塞的预测能力的方法,对Navier-Stokes方程采用条件平均,并根据滤波器的大小将另一个参数引入κε模型。通过使用过滤器尺寸和传统的湍流封闭,可以直接构造子过滤器应力。过滤器与网格解耦,从而可以使用固定的过滤器比例获得与网格无关的解决方案。该模型是在渐进的平面湍流尾流模拟中使用渐进完善的网格对方筒进行评估的。总体而言,与标准κε模型相比,基于过滤器的模型可显着提高预测能力。

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