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CFD analysis of helical nozzles effects on the energy separation in a vortex tube

机译:螺旋喷嘴的CFD分析对涡流管中能量分离的影响

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摘要

In this article computational fluid dynamics (CFD) analysis of a three-dimensional steady state compressible and turbulent flow has been carried out through a vortex tube. The numerical models use the k-ε turbulence model to simulate an axisymmetric computational domain along with periodic boundary conditions. The present research has focused on the energy separation and flow field behavior of a vortex tube by utilizing both straight and helical nozzles. Three kinds of nozzles set include of 3 and 6 straight and 3 helical nozzles have been investigated and their principal effects as cold temperature difference was compared. The studied vortex tubes dimensions are kept the same for all models. The numerical values of hot and cold outlet temperature differences indicate the considerable operating role of helical nozzles, even a few numbers of that in comparing with straight nozzles. The results showed that this type of nozzles causes to form higher swirl velocity in the vortex chamber than the straight one. To be presented numerical results in this paper are validated by both available experimental data and flow characteristics such as stagnation point situation and the location of maximum wall temperature as two important facts. These comparisons showed reasonable agreement.
机译:在本文中,已经通过涡流管对三维稳态可压缩和湍流进行了计算流体动力学(CFD)分析。数值模型使用k-ε湍流模型来模拟轴对称计算域以及周期性边界条件。目前的研究集中在利用直管和螺旋管的涡流管的能量分离和流场特性上。研究了包括3个和6个直线喷嘴和3个螺旋喷嘴的三种喷嘴组,并比较了它们作为冷温差的主要效果。所有型号的涡流管尺寸均保持相同。热和冷出口温度差的数值表明螺旋形喷嘴的相当大的作用,甚至与直喷嘴相比也只有几个。结果表明,这种类型的喷嘴在涡流室内形成的涡旋速度比直喷嘴高。要在本文中给出数值结果,需通过现有的实验数据和流动特性(例如停滞点情况和最高壁温位置)作为两个重要事实进行验证。这些比较显示出合理的一致性。

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