Direct numerical simulation and experimental verification for low Reynolds number circular free jet

被引:1
|
作者
Nakashima, K [1 ]
Yuu, S [1 ]
机构
[1] Kyushu Inst Technol, Dept Mech Engn, Kitakyushu, Fukuoka 804, Japan
关键词
turbulent flow; jet; vortex; numerical analysis; finite difference method; three-dimensional flow;
D O I
10.1252/kakoronbunshu.23.870
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In the simulation studied in this paper, the fifth-order upwind finite difference scheme and second-order Runge-Kutta method are used for the convective terms and the time developing term, respectively, in Navier-Stokes equations to simulate directly free air jet flow. The Reynolds number is 1200 and the calculated flow field ranges from the nozzle exit to the developed turbulent region. Since the computational cell size is smaller than Kolmogorov microscale in the developed region, calculated results can represent motions including micro-scale eddies. Calculated turbulent characteristics are compared with experimental results. Calculated results are in fairly good agreement with experimental data. The results show differences between high and low Reynolds number free jets. The calculated power spectra express experimental results, including high frequency spectra, well. Our computational visualizations show the unique phenomena of a low Reynolds number free jet, such as radial projecting eddies. It is concluded that the direct numerical simulation describes large-scale to micro-scale eddies in a low Reynolds number free jet, well.
引用
收藏
页码:870 / 877
页数:8
相关论文
共 50 条
  • [31] Inlet flow disturbance effects on direct numerical simulation of incompressible round jet at Reynolds number 2500
    Hu, Zejing
    Zhang, Yongliang
    Zhu, Zuojin
    THEORETICAL AND APPLIED MECHANICS LETTERS, 2018, 8 (05) : 345 - 350
  • [32] Inlet flow disturbance effects on direct numerical simulation of incompressible round jet at Reynolds number 2500
    Zejing Hu
    Yongliang Zhang
    Zuojin Zhu
    Theoretical & Applied Mechanics Letters, 2018, 8 (05) : 345 - 350
  • [33] DIRECT NUMERICAL-SIMULATION OF 3-DIMENSIONAL NAVIER STOKES EQUATIONS FOR FREE JET AND EXPERIMENTAL-VERIFICATION
    YUU, S
    KAWASEKI, Y
    NAGASUE, T
    KAGAKU KOGAKU RONBUNSHU, 1992, 18 (01) : 101 - 107
  • [34] Simulation of Jet Drying of a Moist Cylinder at Low Reynolds Number
    Alnak, D. Engin
    Varol, Yasin
    Oztop, Hakan F.
    Al-Salem, Khaled
    DRYING TECHNOLOGY, 2012, 30 (06) : 631 - 640
  • [35] NUMERICAL SIMULATION OF CELL MOTILITY AT LOW REYNOLDS NUMBER
    Scherr, Thomas F.
    Wu, Chunliang
    Monroe, W. Todd
    Nandakumar, Krishnaswamy
    PROCEEDINGS OF THE ASME SUMMER BIOENGINEERING CONFERENCE, PTS A AND B, 2012, : 1189 - 1190
  • [36] Experimental and numerical study of the separation angle for flow around a circular cylinder at low Reynolds number
    Wu, MH
    Wen, CY
    Yen, RH
    Weng, MC
    Wang, AB
    JOURNAL OF FLUID MECHANICS, 2004, 515 : 233 - 260
  • [37] Experimental study of a jet in a crossflow at very low Reynolds number
    Camussi, R
    Guj, G
    Stella, A
    JOURNAL OF FLUID MECHANICS, 2002, 454 : 113 - 144
  • [38] Direct Numerical Simulation of Transcritical Jets at Moderate Reynolds Number
    Lapenna, P. E.
    Creta, F.
    AIAA JOURNAL, 2019, 57 (06) : 2254 - 2263
  • [39] Numerical study of instability mechanisms in a circular jet at low Reynolds numbers
    Gohil, Trushar B.
    Saha, Arun K.
    Muralidhar, K.
    COMPUTERS & FLUIDS, 2012, 64 : 1 - 18
  • [40] Numerical simulation of the flow around a circular cylinder at high Reynolds number
    Catalano, P
    Wang, M
    Iaccarino, G
    Moin, P
    ENGINEERING TURBULENCE MODELLING AND EXPERIMENTS 5, 2002, : 657 - 665