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Performance analysis of a water ejector using Computational Fluid Dynamics (CFD) simulations and mathematical modeling

机译:使用计算流体动力学(CFD)模拟和数学建模的水喷射器的性能分析

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A quasi-one-dimensional (1D) mathematical model coupled with Computational Fluid Dynamics (CFD) simulations of a water ejector is presented. Using data from CFD simulations, the mathematical model was used to calculate the friction loss coefficients of the ejector components, to predict its maximum efficiency point and to delimit its envelope of operation. The CFD approach was validated with experimental data and employed the finite element method to test the main turbulence models found in the literature (k-epsilon, k-omega and k-omega SST) for incompressible-flow ejectors. A set of operational conditions (OP) was tested and results show that the k-omega SST turbulence model is the most suitable to capture the ejector flow characteristics in all OP. In addition, for higher entrainment ratio (M) values, it was observed a possible correlation between how well the boundary layer can be solved and how the model is able to capture the ejector efficiency curve. Moreover, for lower M values, another possible correlation may be stated between how the turbulence model is able to capture the velocity profile. (c) 2021 Elsevier Ltd. All rights reserved.
机译:提出了一种与计算流体动力学(CFD)模拟的准一维(1D)数学模型被呈现出水喷射器的模拟。使用来自CFD仿真的数据,使用数学模型来计算喷射器组件的摩擦损耗系数,以预测其最大效率点并限制其操作包络。使用实验数据验证了CFD方法,采用了有限元方法来测试文献中发现的主要湍流模型(K-Epsilon,K-Omega和K-Omega SST),用于不可压缩流动喷射器。测试了一系列操作条件(OP),结果表明,K-Omega SST湍流模型最适合捕获所有OP中的喷射器流动特性。另外,对于更高的夹带比(M)值,观察到边界层的求解与模型如何捕获喷射器效率曲线之间的可能相关性。此外,对于较低的M值,可以在湍流模型能够捕获速度分布之间说明另一种可能的相关性。 (c)2021 elestvier有限公司保留所有权利。

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