Inleakage of a vortex-ring bunch onto a plane screen

被引:0
|
作者
A. S. Ginevsky
T. V. Pogrebnaya
S. D. Shipilov
机构
[1] Moscow Complex of TsAGI,
关键词
Turbulent Boundary Layer; Vortex Ring; Oceanic Physic; Secondary Vortex; Primary Vortex;
D O I
暂无
中图分类号
学科分类号
摘要
A method is suggested for simulating axisymmetric laminar or turbulent flows formed during the motion of a vortex-ring bunch of given geometry and circulation toward a plane screen. Earlier, similar problems were simulated with the numerical solution of the Navier-Stokes equations for laminar flows. Turbulent flows have remained unconsidered until now. When a vortex ring approaches the screen, the secondary nonstationary flow is induced near the screen’s surface and this secondary flow causes the formation of the radial boundary layer (provided that air viscosity is taken into account). First, the medium spreads out from the critical point at the screen’s center with the negative pressure gradient along the radial coordinate and then detaches in the region of the positive pressure gradient. This radial wall flow and the corresponding boundary layer are considered in the quasi-stationary approximation. When the boundary layer detaches at successive instances, the flow is replenished with the radially moving secondary vortex rings whose circulations have the sign opposite to that of the circulation of the primary vortex ring. It is the interaction of the primary and secondary vortices that governs process dynamics, which differs substantially from that in the case when the formation of secondary vortices is disregarded. The suggested method is based on the method of discrete vortices (a perfect liquid) and the boundary-layer (laminar or turbulent) theory. During the development of the flow under investigation, the nonstationary ascending flow in the direction perpendicular to the screen’s plane is formed and then this flow decays and dissipates. Simulations for large Reynolds numbers corresponding to the formation of the turbulent boundary layer show that the velocity of ascending vortices in the plane of the initial vortex bunch is less than one-tenth of the initial velocity of the descending vortex ring. The boundary layer is introduced into calculations with the sole goal of determining the parameters of the secondary vortex rings formed during boundary-layer detachments. The interaction of the primary and secondary vortices is then considered within the framework of a perfect medium. Simulations for large Reynolds numbers corresponding to the formation of the turbulent boundary layer on the screen were correlated with the available data obtained in laboratory experiments for small Reynolds numbers. Qualitative agreement between the simulations and experiments is fairly satisfactory. The simulation for one combination of the circulation and vortex-ring geometry takes at most 10–15 min with the use of an average PC.
引用
收藏
页码:627 / 631
页数:4
相关论文
共 50 条
  • [21] Vortex-Ring Specific Heat of Superfluid Helium in Porous Materials
    Gary A. Williams
    Journal of Low Temperature Physics, 1998, 110 : 567 - 572
  • [22] Numerical Simulation of Vortex-Ring Mixing of a Thermally Stratified Environment
    Alaswad, Ziad
    Rankin, Gary W.
    INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS (ICNAAM-2018), 2019, 2116
  • [23] VORTEX-RING - GENERATED LEVEL DIFFERENCES IN LIQUID-HELIUM
    CAREY, R
    CHANDRASEKHAR, BS
    DAHM, AJ
    PHYSICAL REVIEW LETTERS, 1973, 31 (14) : 873 - 876
  • [24] Vortex-ring specific heat of superfluid helium in porous materials
    Williams, GA
    JOURNAL OF LOW TEMPERATURE PHYSICS, 1998, 110 (1-2) : 567 - 572
  • [25] Vortex-ring quantum droplets in a radially-periodic potential
    Liu, Bin
    Chen, Yi Xi
    Yang, Ao Wei
    Cai, Xiao Yan
    Liu, Yan
    Luo, Zhi Huan
    Qin, Xi Zhou
    Jiang, Xun Da
    Li, Yong Yao
    Malomed, Boris A.
    NEW JOURNAL OF PHYSICS, 2022, 24 (12):
  • [26] Some observations on vortex-ring collisions upon inclined surfaces
    T. H. New
    Shengxian Shi
    B. Zang
    Experiments in Fluids, 2016, 57
  • [27] Some observations on vortex-ring collisions upon inclined surfaces
    New, T. H.
    Shi, Shengxian
    Zang, B.
    EXPERIMENTS IN FLUIDS, 2016, 57 (06)
  • [28] STUDY OF VORTEX-RING TRANSITION IN SUPERFLUID HE-4
    ZOLL, R
    PHYSICAL REVIEW B, 1976, 14 (07): : 2913 - 2926
  • [29] Vortex-ring quantum droplets in a radially-periodic potential
    Liu, Bin
    Chen, Yi xi
    Yang, Ao wei
    Cai, Xiao yan
    Liu, Yan
    Luo, Zhi huan
    Qin, Xi zhou
    da Jiang, Xun
    Li, Yong yao
    Malomed, Boris A.
    arXiv, 2022,
  • [30] Vortex-ring modeling of complex systems and Mendeleev's table
    Osmera, P.
    WCECS 2007: WORLD CONGRESS ON ENGINEERING AND COMPUTER SCIENCE, 2007, : 152 - 157