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CFD SIMULATION OF A SUPERSONIC STEAM EJECTOR FOR REFRIGERATION APPLICATION

机译:用于制冷应用的超音速蒸汽喷射器的CFD模拟

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Supersonic steam ejectors are widely used in many industrial applications, for example for refrigeration and desalination. The experimental evaluation of the flow field inside the ejector is relatively difficult and costly due to the occurrence of shock after the velocity of the steam reaches over the sonic level in the ejector. In this paper, numerical simulations are conducted to investigate the detailed flow field inside a supersonic steam (water vapor being the working fluid) ejector. The commercial computational fluid dynamics (CFD) flow solver ANSYS-Fluent and the mesh generation software ANSYS-ICEM are used to predict the steam performance during the mixing inside the ejector by employing two turbulence models, the k-ω SST and the k-e realizable models. The computed results are validated against the experimental data. The effects of operating conditions on the efficiency of the ejector such as the primary fluid pressure and condenser pressure are studied to obtain a better understanding of the mixing process and entrainment. Velocity contours, pressure plots and shock region analyses provide a good understanding for optimization of the ejector performance, in particular how to increase the entrainment ratio.
机译:超音速蒸汽喷射器广泛用于许多工业应用中,例如用于制冷和海水淡化。由于在喷射器中的声音水平上达到声音水平的速度达到速度之后,喷射器内部的流场的实验评估是相对困难的并且昂贵的是由于在喷射器中的声音水平上达到声音水平。在本文中,进行了数值模拟,以研究超音速蒸汽(水蒸气是工作流体)喷射器内的详细流场。商业计算流体动力学(CFD)流动求解器Ansys-Fluent和网格生成软件ANSYS-ICEM通过采用两个湍流模型,K-ωSST和KE可实现的模型来预测喷射器内部混合期间的蒸汽性能。计算结果针对实验数据验证。研究了操作条件对喷射器的效率的影响,例如主要流体压力和冷凝器压力,以更好地理解混合过程和夹带。速度轮廓,压力块和冲击区域分析提供了对优化喷射器性能的良好理解,特别是如何提高夹带比率。

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