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Filter-Based Unsteady RANS Computations for Single-Phase and Cavitating Flows

机译:单相和空化流的基于滤波器的非稳态RANS计算

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摘要

The widely used Reynolds-Averaged Navier-Stokes (RANS) approach, such as the k-ε two-equation model, has been found to over-predict the eddy viscosity and can dampen out the time dependent fluid dynamics in both single- and two-phase flows. To improve the predictive capability of this type of engineering turbulence closures, a consistent method is offered to bridge the gap between DNS, LES and RANS models. Based on the filter size, conditional averaging is adopted for the Navier-Stokes equation to introduce one more parameter into the definition of the eddy viscosity. Both time-dependent single-phase and cavitating flows are simulated by a pressure-based method and finite volume approach in the framework of the Favre-averaged equations coupled with the new turbulence model. The impact of the filter-based concept, including the filter size and grid dependencies, is investigated using the standard k-ε model and with the available experimental information.
机译:已发现广泛使用的雷诺平均Navier-Stokes(RANS)方法(例如k-ε两方程模型)过高预测了涡流粘度,并且可以抑制单时间和两时间中随时间变化的流体动力学。相流。为了提高这种工程湍流闭塞的预测能力,提供了一种一致的方法来弥合DNS,LES和RANS模型之间的差距。根据过滤器的尺寸,对Navier-Stokes方程采用条件平均,以将另一个参数引入涡流粘度的定义。在基于Favre平均方程和新湍流模型的框架内,通过基于压力的方法和有限体积方法,模拟了随时间变化的单相流和空化流。使用标准k-ε模型以及可用的实验信息,研究了基于滤波器的概念(包括滤波器大小和网格依存关系)的影响。

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