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Numerical study of species separation in rarefied gas mixture flow through micronozzles using DSMC

机译:使用DSMC流过微米淋动物的稀土气体混合物中物种分离的数值研究

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摘要

This work investigates the species separation in the rarefied flow of the argon-helium mixture through convergent-divergent micronozzles. Imposing a molecular mass ratio in the order of 10, the flow of this mixture can lead to the formation of serious nonhomogeneous phenomena such as the species separation. This study is performed in the ranges of 2.0-4.0 for the geometrical expansion ratio, 200-400 K for the wall temperature, and 0.003-1.454 for the inlet Knudsen number. The effects of these parameters are examined on the separative performances of micronozzle. The direct simulation Monte Carlo method is selected as the solution method because it can provide reliable solutions in the current rarefied flow regime study. The current study reveals two important separative effects in the mixture flow through micronozzles. The first effect is the lateral species separation, which results in the enrichment of heavier species near the centerline. The second effect is the streamwise separation, which leads to the enrichment of one species, mostly the lighter one, as the mixture passes through the micronozzle. The current results show that increasing the expansion ratio will enhance the lateral separation monotonically. However, there are specific wall temperature and Knudsen values, which can result in optimum lateral separative effects. In addition, it is observed that the expansion ratio has little effect on the streamwise separation. However, increasing either the wall temperature or the Knudsen number will enhance the streamwise separation, albeit with a limiting value at very high Knudsen numbers. Published under license by AIP Publishing.
机译:该工作通过会聚 - 发散微淋拉研究了氩氦混合物的稀土流动中的物种分离。施加分子质量比例为10,该混合物的流动可以导致形成严重的非均匀现象,例如物种分离。该研究在2.0-4.0的范围内进行,用于几何膨胀比,200-400 k用于壁温,对于入口knudsen号为0.003-1.454。检查这些参数的效果是对微孔嘴的分散性能的影响。选择直接仿真蒙特卡罗方法作为解决方案方法,因为它可以在目前的稀薄流动制度研究中提供可靠的解决方案。目前的研究揭示了混合物中的两个重要的分效效果通过微微涂料流动。第一种效果是横向物种分离,导致富含中心线附近的较重的物种。第二次效果是流动的分离,这导致一个物种的富集,主要是较轻的,因为混合物通过微量嘴。目前的结果表明,增加膨胀比将单调地增强横向分离。然而,有特定的壁温和knudsen值,这可能导致最佳的横向分离效果。此外,观察到膨胀比对流动分离几乎没有影响。然而,增加壁温或knudsen数将增强流动的分离,尽管具有极高的knudsen数字的限制值。通过AIP发布在许可证下发布。

著录项

  • 来源
    《Physics of fluids》 |2019年第4期|共15页
  • 作者单位

    Sharif Univ Technol Inst Nanosci &

    Nanotechnol Dept Aerosp Engn Ctr Excellence Aerosp Syst POB 11365-11155 Tehran Iran;

    Sharif Univ Technol Inst Nanosci &

    Nanotechnol Dept Aerosp Engn Ctr Excellence Aerosp Syst POB 11365-11155 Tehran Iran;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

  • 入库时间 2022-08-19 18:20:42

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