A COMPUTATIONAL ESTIMATION OF VELOCITY DISTRIBUTION OF BOUNDARY LAYER ON A SPHERICAL BUBBLE

被引:0
|
作者
Kusuno, Hiroaki [1 ]
Sanada, Toshiyuki [2 ]
机构
[1] Shizuoka Univ, Grad Sch Sci & Technol, Hamamatsu, Shizuoka, Japan
[2] Shizuoka Univ, Dept Mech Engn, Hamamatsu, Shizuoka, Japan
关键词
Boundary layer; Single bubble; Spherical bubble; NUMERICAL-SOLUTION; FLUID-MECHANICS; MOTION;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The aim of this study is to investigate a velocity distribution of velocity boundary layer on a spherical bubble using numerical simulation and to compare the results with the theoretical model. In this study, we calculated the axisymmetric flow around a spherical bubble, the Reynolds number ranged from 50-1000. We selected Navier-Stokes equations written in the vorticity-stream function to capture small vorticity generated on the bubble surface. We described bubble surface with boundary fitted coordinate system. As a preliminary test, we guaranteed the accuracy of calculation method adopted in this study. Previous study showed that it needs three calculation points in the theoretical boundary layer to describe the boundary layer with second order accuracy. Our study, however, shows that the it needs seven points to describe the boundary layer even if forth order accuracy. We compared the velocity distribution of numerical result to that of theoretical model. The velocity in the vicinity of bubble is divided into potential solution and perturbed velocity component. At bubble side, the absolute value of the perturbation velocity estimated by numerical result is slightly larger than that of the theoretical model in any Reynolds numbers. When we defined bubble boundary layer thickness as the region below to 99% velocity of the potential solution, we find that value of the boundary layer thickness proposed in this study is two to three times larger than that of theoretical model. In the vicinity of the rear stagnant region (i.e. in the wake of bubble), numerical and the theoretical velocity distribution does not match at all.
引用
收藏
页数:5
相关论文
共 50 条
  • [31] An anomalous method of using a camera in determining the velocity distribution within a boundary layer
    Faazil, Aafrein Begam
    Eapen, Ann Mary
    Siddharth, Kizhakkelan Sudhakaran
    FLOW MEASUREMENT AND INSTRUMENTATION, 2023, 90
  • [32] DIFFUSION WITHIN A DEVELOPING BOUNDARY LAYER - A MATHEMATICAL SOLUTION FOR ARBITRARY VELOCITY DISTRIBUTION
    MIXON, FO
    CARBERRY, JJ
    CHEMICAL ENGINEERING SCIENCE, 1960, 13 (01) : 30 - 33
  • [34] Influence of bubble approach velocity on liquid film drainage between a bubble and a spherical particle
    Albijanic, Boris
    Zhou, You
    Tadesse, Bogale
    Dyer, Laurence
    Xu, Guang
    Yang, Xianglin
    POWDER TECHNOLOGY, 2018, 338 : 140 - 144
  • [35] COMPUTATIONAL TECHNIQUES FOR SPHERICAL BOUNDARY-CONDITIONS
    KRATKY, KW
    SCHREINER, W
    JOURNAL OF COMPUTATIONAL PHYSICS, 1982, 47 (02) : 313 - 320
  • [36] Simulation of bubble migration in a turbulent boundary layer
    Mattson, M.
    Mahesh, K.
    PHYSICS OF FLUIDS, 2011, 23 (04)
  • [37] On the structure of the boundary layer in a Beklemishev diamagnetic bubble
    Kotelnikov, Igor
    PLASMA PHYSICS AND CONTROLLED FUSION, 2020, 62 (07)
  • [38] BUBBLE - An urban boundary layer meteorology project
    Rotach, MW
    Vogt, R
    Bernhofer, C
    Batchvarova, E
    Christen, A
    Clappier, A
    Feddersen, B
    Gryning, SE
    Martucci, G
    Mayer, H
    Mitev, V
    Oke, TR
    Parlow, E
    Richner, H
    Roth, M
    Roulet, YA
    Ruffieux, D
    Salmond, JA
    Schatzmann, M
    Voogt, JA
    THEORETICAL AND APPLIED CLIMATOLOGY, 2005, 81 (3-4) : 231 - 261
  • [39] BUBBLE – an Urban Boundary Layer Meteorology Project
    M. W. Rotach
    R. Vogt
    C. Bernhofer
    E. Batchvarova
    A. Christen
    A. Clappier
    B. Feddersen
    S.-E. Gryning
    G. Martucci
    H. Mayer
    V. Mitev
    T. R. Oke
    E. Parlow
    H. Richner
    M. Roth
    Y.-A. Roulet
    D. Ruffieux
    J. A. Salmond
    M. Schatzmann
    J. A. Voogt
    Theoretical and Applied Climatology, 2005, 81 : 231 - 261
  • [40] Modelling of turbulent bubble flow in the boundary layer
    Mikielewicz, D
    INTERNATIONAL SYMPOSIUM ON MULTI-PHASE FLOW AND TRANSPORT PHENOMENA, 2001, : 41 - 48