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Three Dimensional Numerical Analysis of Two Phase Flow Separation Using Swirling Fluidics

机译:旋流流体两相流分离的三维数值分析

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Vapor-water two phase flow separation in pressure vessel of nuclear power plants is accomplished with swirl motion using vanes. In order to reduce separation pressure loss and to make it economic, a new type of low cost simplified innovative separator using lattice core configuration is proposed where swirling is caused by the orthogonal driving flow. The performance of the separator has been assessed numerically with the commercial CFD code FLUENT 14.0. The numerical analysis is compared with the experiment. The geometry and flow conditions are chosen according to the experiment. In the analysis, standard k – e and realizable k – e turbulence models are implemented. The prediction of maximum air void fraction with realizable k – e model was almost the same as input air void fraction but the void fraction computed by standard k – e model was compared better with the experimental results than the realizable k – e model. Some discrepancies in flow pattern between the experimental and simulation results are observed which might be due to the difference of nozzle shape. However, a more detailed model is necessary to arrive at the final conclusion.
机译:核电站压力容器中的汽水两相流分离是利用叶片的涡旋运动完成的。为了减少分离压力损失并使之经济,提出了一种使用晶格芯构型的新型低成本简化创新型分离器,其中正交驱动流引起了涡流。分离器的性能已通过商品CFD代码FLUENT 14.0进行了数字评估。将数值分析与实验进行了比较。根据实验选择几何形状和流动条件。在分析中,采用了标准的k-e和可实现的k-e湍流模型。可实现的k-e模型对最大空气空隙率的预测与输入的空气-空隙率几乎相同,但与可实现的k-e模型相比,由标准k-e模型计算出的空隙率与实验结果更好地进行了比较。观察到实验和模拟结果之间的流型有些差异,这可能是由于喷嘴形状的差异所致。但是,需要更详细的模型才能得出最终结论。

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