A CFD investigation of flow separation in an elliptical and circular Ranque-Hilsch vortex tube

IF 1.1 Q3 Engineering Journal of Thermal Engineering Pub Date : 2023-04-18 DOI:10.18186/thermal.1285134
N. Bagre, A. Parekh, V. Patel
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Abstract

The present work investigates the flow physics inside an elliptical vortex tube. Two different 3D (three-dimensional) domains of circular and elliptical vortex tubes with four nozzles are studied. The cross-sectional area and length of the vortex tube are constant for both of its shape. The pressure at the inlet is 320 kPa for both the shapes and air as a working fluid. Standard k- ε turbulence model is used to predict the flow physics and temperature separation effect inside the tubes. The experimental and numerical findings of earlier researchers provide as validation for the present results. The deviation of the results is found within the permissible limit. The temperature separation phenomenon in an elliptical tube at various cold mass fractions is discussed. The range of cold mass fraction is 0.1 to 0.9. This work also examines the fluid characteristics and flow parameters by tracing the fluid particles within the tube. Fluid characteristics such as static pressure, density, total temperature, static temperature are evaluated. Also, the flow parameters like velocity magnitude, turbulent kinetic energy, axial velocity, and swirl velocity are discussed at the various radial locations inside the tube to get the flow pattern information. It’s an attempt to determine the feasible flow mechanism inside an elliptical vortex tube. The comparison between the circular vortex tube and the elliptical vortex tube has been done based on various fluid characteristics and temperature separation. It is found that energy separation is elevated in an elliptical tube by 49.89% at the hot end tube at 0.2 cold mass fraction whereas it is low for cold temperature separation as compared to the circular vortex.
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椭圆和圆形Ranque-Hilsch涡管内流动分离的CFD研究
本文研究了椭圆涡流管内的流动物理。研究了带有四个喷嘴的圆形和椭圆形涡流管的两个不同的三维区域。涡流管的横截面积和长度对于其两种形状都是恒定的。对于形状和作为工作流体的空气,入口处的压力均为320kPa。采用标准的k-ε湍流模型来预测管内的流动物理和温度分离效应。早期研究人员的实验和数值发现为目前的结果提供了验证。结果的偏差在允许的限度内。讨论了椭圆管在不同冷质量分数下的温度分离现象。冷质量分数的范围为0.1至0.9。这项工作还通过追踪管内的流体颗粒来检查流体特性和流动参数。流体特性,如静压,密度,总温度,静态温度进行评估。此外,还讨论了管内不同径向位置的流速大小、湍流动能、轴向速度和涡流速度等流动参数,以获得流型信息。这是试图确定椭圆涡流管内可行的流动机制。根据不同的流体特性和温度分离,对圆形涡流管和椭圆形涡流管进行了比较。发现在0.2冷质量分数下,椭圆管中热端管的能量分离提高了49.89%,而与圆形涡流相比,低温分离的能量分离较低。
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来源期刊
CiteScore
2.40
自引率
18.20%
发文量
61
审稿时长
4 weeks
期刊介绍: Journal of Thermal Enginering is aimed at giving a recognized platform to students, researchers, research scholars, teachers, authors and other professionals in the field of research in Thermal Engineering subjects, to publish their original and current research work to a wide, international audience. In order to achieve this goal, we will have applied for SCI-Expanded Index in 2021 after having an Impact Factor in 2020. The aim of the journal, published on behalf of Yildiz Technical University in Istanbul-Turkey, is to not only include actual, original and applied studies prepared on the sciences of heat transfer and thermodynamics, and contribute to the literature of engineering sciences on the national and international areas but also help the development of Mechanical Engineering. Engineers and academicians from disciplines of Power Plant Engineering, Energy Engineering, Building Services Engineering, HVAC Engineering, Solar Engineering, Wind Engineering, Nanoengineering, surface engineering, thin film technologies, and Computer Aided Engineering will be expected to benefit from this journal’s outputs.
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