湍流
空化
压缩性
机械
文丘里效应
正压流体
Kε湍流模型
K-omega湍流模型
湍流模型
物理
计算机模拟
热力学
工程类
机械工程
入口
作者
Olivier Coutier-Delgosha,Régiane Fortes Patella,J. L. Reboud
出处
期刊:Journal of Fluids Engineering-transactions of The Asme
[ASM International]
日期:2003-01-01
卷期号:125 (1): 38-45
被引量:493
摘要
Unsteady cavitation in a Venturi-type section was simulated by two-dimensional computations of viscous, compressible, and turbulent cavitating flows. The numerical model used an implicit finite volume scheme (based on the SIMPLE algorithm) to solve Reynolds-averaged Navier-Stokes equations, associated with a barotropic vapor/liquid state law that strongly links the density variations to the pressure evolution. To simulate turbulence effects on cavitating flows, four different models were implemented (standard k-ε RNG; modified k-ε RNG; k-ω with and without compressibility effects), and numerical results obtained were compared to experimental ones. The standard models k-ε RNG and k-ω without compressibility effects lead to a poor description of the self-oscillation behavior of the cavitating flow. To improve numerical simulations by taking into account the influence of the compressibility of the two-phase medium on turbulence, two other models were implemented in the numerical code: a modified k-ε model and the k-ω model including compressibility effects. Results obtained concerning void ratio, velocity fields, and cavitation unsteady behavior were found in good agreement with experimental ones. The role of the compressibility effects on turbulent two-phase flow modeling was analyzed, and it seemed to be of primary importance in numerical simulations.
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