MATHEMATICAL MODELING OF A SUPERSONIC TWIN JET INTERACTION WITH AN OBSTACLE

被引:1
|
作者
Kagenov, A. M. [1 ]
Kostyushin, K., V [2 ]
Aligasanova, K. L. [2 ]
Kotonogov, V. A. [2 ]
机构
[1] Tomsk State Univ, Res Inst Appl Math & Mech, Phys & Math, Tomsk, Russia
[2] Tomsk State Univ, Res Inst Appl Math & Mech, Tomsk, Russia
关键词
supersonic twin jet; multiple plume; shock wave structure; mathematical modeling; Godunov method; OpenFOAM;
D O I
10.17223/19988621/68/7
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The paper presents the results of the mathematical modeling of a supersonic twin jet interaction with an obstacle for the Mach number of 4.5 specified at the nozzle exit. Mathematical formulation of the problem includes a system of Favre-averaged Navier-Stokes equations and SST turbulence model for a viscous compressible ideal gas. The calculations are carried out using the free software OpenFOAM Extended with the Godunov method employed. The effect of the distance between nozzles on the shock-wave structure of the gas flow and on the force action of the plumes on the obstacle is studied. The distance between the nozzles varied in the range of 0.1-4. It is found that with an increase in the distance from 0.1 to 0.5, the flow structure is significantly rearranged, and two pressure maxima arise, which increase in comparison to the distance of 0.2. A decrease in pressure on the obstacle is observed at the distance over 1.0. For a distance of 4, two pressure maxima occur on the axis of each jet, while the force action of each jet is half as high as the resultant jet force action for a distance of 0.1. The transition from a stationary regime to a self-oscillating one is observed when the distance exceeds the value of 1.5.
引用
收藏
页码:72 / 79
页数:8
相关论文
共 50 条
  • [31] DIAMOND PORT JET INTERACTION WITH SUPERSONIC FLOW
    樊怀国
    张春晓
    何川
    [J]. Applied Mathematics and Mechanics(English Edition), 2005, (10) : 92 - 100
  • [32] Jet interaction at supersonic cross flow conditions
    F. Seiler
    P. Gnemmi
    H. Ende
    M. Schwenzer
    R. Meuer
    [J]. Shock Waves, 2003, 13 : 13 - 23
  • [33] Jet interaction at supersonic cross flow conditions
    Seiler, F
    Gnemmi, P
    Ende, H
    Schwenzer, M
    Meuer, R
    [J]. SHOCK WAVES, 2003, 13 (01) : 13 - 23
  • [34] Diamond port jet interaction with supersonic flow
    Huai-guo Fan
    Chun-xiao Zhang
    Chuan He
    [J]. Applied Mathematics and Mechanics, 2005, 26 : 1332 - 1340
  • [35] Mechanism of self-oscillations in a supersonic jet impact onto an obstacle 1. Obstacle with a spike
    S. P. Kiselev
    V. P. Kiselev
    V. N. Zaikovskii
    [J]. Journal of Applied Mechanics and Technical Physics, 2014, 55 (4) : 593 - 601
  • [36] Mechanism of self-oscillations in a supersonic jet impact onto an obstacle 1. Obstacle with a spike
    Kiselev, S. P.
    Kiselev, V. P.
    Zaikovskii, V. N.
    [J]. JOURNAL OF APPLIED MECHANICS AND TECHNICAL PHYSICS, 2014, 55 (04) : 593 - 601
  • [37] SUPERSONIC JET-CAVITY OSCILLATORY INTERACTION
    KOTOV, AI
    UGRIUMOV, EA
    [J]. VESTNIK LENINGRADSKOGO UNIVERSITETA SERIYA MATEMATIKA MEKHANIKA ASTRONOMIYA, 1984, (01): : 64 - 68
  • [38] Supersonic plasma jet interaction with gases and plasmas
    Nicolai, P.
    Stenz, C.
    Tikhonchuk, V.
    Ribeyre, X.
    Kasperczuk, A.
    Pisarczyk, T.
    Juha, L.
    Krousky, E.
    Masek, K.
    Pfeifer, M.
    Rohlena, K.
    Skala, J.
    Ullschmied, J.
    Kalal, M.
    Klir, D.
    Kravarik, J.
    Kubes, P.
    Pisarczyk, P.
    [J]. ASTROPHYSICS AND SPACE SCIENCE, 2009, 322 (1-4) : 11 - 17
  • [39] Numerical investigation of jet interaction in a supersonic freestream
    Ebrahimi, Houshang B.
    [J]. JOURNAL OF SPACECRAFT AND ROCKETS, 2008, 45 (01) : 95 - 103
  • [40] THE INTERACTION OF A VORTEX RING AND A COAXIAL SUPERSONIC JET
    BROADBENT, EG
    MOORE, DW
    [J]. PROCEEDINGS OF THE ROYAL SOCIETY OF LONDON SERIES A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1987, 409 (1836): : 47 - 57