Numerical Investigation of the Secondary Swirling in Supersonic Flows of Various Nature Gases

被引:1
|
作者
Volov, Vyacheslav [1 ]
Elisov, Nikolay
Lyaskin, Anton [2 ]
机构
[1] Samara State Transport Univ, Nat Sci Dept, Samara 443066, Russia
[2] ERA Mil Innovat Technopolis, Dept Expertise, Anapa 353456, Russia
关键词
Ranque-Hilsch vortex tube; energy separation; tangential nozzle; computational fluid dynamics; HILSCH VORTEX TUBE; ENERGY SEPARATION; THERMAL PERFORMANCE; OPTIMIZATION; EFFICIENCY;
D O I
10.3390/en14238122
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Despite the application of vortex tubes for cooling, separating gas mixtures, vacuuming, etc., the mechanism of energy separation in vortex tubes remains an object of discussion. This paper studies the effect of secondary swirling in supersonic flows on the energy separation of monatomic and diatomic gases. The approach used is a numerical solution of the Reynolds-averaged Navier-Stokes equations, closed by the Reynolds Stress Model turbulence model. The modelling provided is for a self-vacuuming vortex tube with air, helium, argon, and carbon dioxide. According to the results of the calculations, the effect of secondary swirling is inherent only in viscous gases. A comparison was made between obtained total temperature difference, the level of secondary swirling and power losses on expansion from the nozzle, compression shocks, friction, turbulence, and energy costs to develop cascaded swirl structures. Our results indicate that helium and argon have the highest swirling degree and, consequently, the highest energy separation. Moreover, it can be concluded that the power costs on the development of cascaded vortex structures have a significant role in the efficiency of energy separation.
引用
收藏
页数:25
相关论文
共 50 条
  • [1] LUMINESCENCE IN SUPERSONIC SWIRLING FLOWS
    LAVAN, Z
    FEJER, AA
    JOURNAL OF FLUID MECHANICS, 1965, 23 : 173 - &
  • [2] INVESTIGATION OF SUPERSONIC SWIRLING JETS
    SMITH, R
    AERONAUTICAL QUARTERLY, 1973, 24 (AUG): : 167 - 178
  • [3] Numerical Investigation of Supersonic Flows Around Hyperelliptic Cones
    V. F. Volkov
    I. I. Mazhul
    Fluid Dynamics, 2001, 36 (5) : 803 - 811
  • [4] NUMERICAL INVESTIGATION OF PARTICLE TEMPERATURE CHANGE IN SUPERSONIC FLOWS
    Sakamaki, Ryohei
    Suzuki, Masaya
    Yamamoto, Makoto
    PROCEEDINGS OF CHT-12 - ICHMT INTERNATIONAL SYMPOSIUM ON ADVANCES IN COMPUTATIONAL HEAT TRANSFER, 2012, : 1101 - 1107
  • [5] Numerical investigation of supersonic MPD viscous flows with ionization
    Takeda, H
    Yamamoto, S
    JSME INTERNATIONAL JOURNAL SERIES B-FLUIDS AND THERMAL ENGINEERING, 2002, 45 (01) : 97 - 101
  • [6] Annular supersonic swirling flows with heterogeneous condensation
    Yusuke Fukushima
    Shigeru Matsuo
    Norimasa Shiomi
    Toshiaki Setoguchi
    Journal of Thermal Science, 2016, 25 : 518 - 525
  • [7] Annular Supersonic Swirling Flows with Heterogeneous Condensation
    Yusuke FUKUSHIMA
    Shigeru MATSUO
    Norimasa SHIOMI
    Toshiaki SETOGUCHI
    JournalofThermalScience, 2016, 25 (06) : 518 - 525
  • [8] Direct numerical simulations of supersonic turbulent channel flows of dense gases
    Sciacovelli, L.
    Cinnella, P.
    Gloerfelt, X.
    JOURNAL OF FLUID MECHANICS, 2017, 821 : 153 - 199
  • [9] Annular Supersonic Swirling Flows with Heterogeneous Condensation
    Fukushima, Yusuke
    Matsuo, Shigeru
    Shiomi, Norimasa
    Setoguchi, Toshiaki
    JOURNAL OF THERMAL SCIENCE, 2016, 25 (06) : 518 - 525
  • [10] Numerical research of the swirling supersonic gas flows in the self-vacuuming vortex tube
    Volov, V. T.
    Lyaskin, A. S.
    6TH INTERNATIONAL CONFERENCE HEAT AND MASS TRANSFER AND HYDRODYNAMICS IN SWIRLING FLOWS, 2018, 980