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Numerical prediction of vortex flow and thermal separation in a subsonic vortex tube

机译:亚旋转管中涡流流动和热分离的数值预测

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This work was aimed at gaining understanding of the physical behaviours of the flow and temperature separation process in a vortex tube. To investigate the cold mass fraction’s effect on the temperature separation, the numerical calculation was carried out using an algebraic Reynolds stress model (ASM) and the standard k-ε model. The modelling of turbulence of compressible, complex flows used in the simulation is discussed. Emphasis is given to the derivation of the ASM for 2D axisymmetrical flows, particularly to the model constants in the algebraic Reynolds stress equations. The TEFESS code, based on a staggered Finite Volume approach with the standard k-ε model and first-order numerical schemes, was used to carry out all the computations. The predicted results for strongly swirling turbulent compressible flow in a vortex tube suggested that the use of the ASM leads to better agreement between the numerical results and experimental data, while the k-ε model cannot capture the stabilizing effect of the swirl.
机译:这项工作旨在获得涡旋管中流动和温度分离过程的物理行为的理解。为了研究冷质量级分对温度分离的影响,使用代数雷诺应力模型(ASM)和标准K-ε模型进行数值计算。讨论了模拟中使用的可压缩,复杂流的湍流建模。对2D轴对称流动的ASM的推导给予重点,特别是在代数雷诺应力方程中的模型常数。基于具有标准K-ε模型和一阶数值方案的交错有限体积方法的TEFESS代码用于执行所有计算。在涡旋管中强烈旋转湍流可压缩流动的预测结果表明,ASM的使用导致数值结果和实验数据之间更好地达成一致,而K-ε模型不能捕获旋流的稳定效果。

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