LARGE EDDY SIMULATION OF A SUBMERGED VORTEX IN A SIMPLIFIED COMPUTATIONAL MODEL

被引:0
|
作者
Yamade, Yoshinobu [1 ,2 ]
Kato, Chisachi [2 ]
Nagahara, Takahide [3 ]
Matsui, Jun [4 ]
机构
[1] Mizuho Informat & Res Inst Inc, Chiyoda Ku, Tokyo, Japan
[2] Univ Tokyo, Inst Ind Sci, Meguro Ku, Tokyo, Japan
[3] Infrastruct Syst Co Hitachi Ltd, Turbomachinery R&D Ctr, Kandatsu Cho, Tsuchiura, Ibaraki, Japan
[4] Yokohama Natl Univ, Fac Engn, Hodogaya Ku, Yokohama, Kanagawa, Japan
关键词
submerged vortex; vortex core; pump sump; large eddy simulation; PUMP; FLOWS;
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 flow structures ofa submerged vortex that appears in a model pump sump were numerically investigated by performing large eddy simulation (LES) of a model vortex in a simplified computational model with a sufficiently fine grid that could resolve the vortex core. The simplified model is designed to simulate the flow under the bellmouth in a model pump sump. The model pump sump is composed of a 2,500 mm-long water channel of rectangular cross section with a width of 300 mm, a water height of 150 mm and a vertical suction pipe with a diameter of 100 mm installed at its downstream end. Our previous large eddy simulations, which used approximately 2 billion grids and were applied to the model pump sump, have fully clarified the origin and formation mechanism of a submerged vortex. In these computations, however, the static pressure in the vortex core decreased only by as much as 4 kPa at a channel velocity of 0.37 m/s. The decrease in the static pressure was far smaller than the one for which one can expect initiation of cavitation in the vortex core. The static pressure drop was most likely to be underpredicted in our previous LES. Insufficient grid resolution was assumed to be one ofthe reasons for this underprediction. In the present study, LES with a sufficientlyfine grid was applied to the simplified computational model that represents the stretch of a submerged vortex under a constant acceleration of the vertical velocity. Case studies for which the grid resolution was varied between 3.25 and 150 micrometres were performed while the size of the vortex core appeared in the simplified model was 500 micrometres. As a result, we confirmed the grid resolution finer than 15 micrometres is needed to resolve the vortex core with a diameter of 500 micrometres. Vertical and tangential velocities obtained by averaging those distributions ofa submerged vortex that was computed in our previous LES were prescribed at the bottom wall ofthe computational domain as the inlet boundary conditions. In the present LES with the grid resolution finer than 15 micrometres, the static pressure decreased by more than 100 kPa. In addition, the parametric studies where the initial swirl numbers were changed have fully clarified the change in the dynamics of a submerged vortex. We found that a strong submerged vortex appears only at a relatively small range of the swirl-number from 1 to 3.
引用
下载
收藏
页数:14
相关论文
共 50 条
  • [1] Large eddy simulation and experimental study on vortex characteristics of water jet in submerged condition
    State Key Laboratory of Coal Mine Disaster Dynamics and Control, Chongqing University, Chongqing
    400030, China
    不详
    400030, China
    Zhongguo Shiyou Daxue Xuebao (Ziran Kexue Ban), 3 (98-104): : 98 - 104
  • [2] Large eddy simulation on the vortex evolution in a squirrel-cage fan based on a slice computational model
    Jiang, Boyan
    Huang, Yougen
    Yang, Xiaopei
    Xiao, Qianhao
    Yang, Weigang
    Wang, Jun
    ENGINEERING APPLICATIONS OF COMPUTATIONAL FLUID MECHANICS, 2022, 16 (01) : 1324 - 1343
  • [3] Large Eddy Simulation of the Flow Around a Simplified Car Model
    Nusser, K.
    Mueller, S.
    Scheit, C.
    Oswald, M.
    Becker, S.
    DIRECT AND LARGE-EDDY SIMULATION X, 2018, 24 : 243 - 249
  • [4] On the Large Eddy Simulation of the Taylor–Green vortex
    Luigi C. Berselli
    Journal of Mathematical Fluid Mechanics, 2005, 7 : S164 - S191
  • [5] A vortex-based subgrid stress model for large-eddy simulation
    Misra, A
    Pullin, DI
    PHYSICS OF FLUIDS, 1997, 9 (08) : 2443 - 2454
  • [6] Numerical investigations of submerged vortices in a model pump sump by using Large Eddy Simulation
    Yamade, Y.
    Kato, C.
    Nagahara, T.
    Matsui, Jun
    28TH IAHR SYMPOSIUM ON HYDRAULIC MACHINERY AND SYSTEMS (IAHR2016), PTS 1-12, 2016, 49
  • [7] Wake vortex model for real-time flight simulation based on large eddy simulation
    Spence, Graham T.
    Le Moigne, Alan
    Allerton, David J.
    Qin, Ning
    JOURNAL OF AIRCRAFT, 2007, 44 (02): : 467 - 475
  • [8] Wake vortex model for real-time flight simulation based on large eddy simulation
    Spence, Graham T.
    Le Moigne, Alan
    Allerton, David J.
    Qin, Ning
    Journal of Aircraft, 1600, 44 (02): : 467 - 475
  • [9] Large eddy simulation on vortex characteristics of a rectangular jet
    Jiang, P
    Guo, YC
    Lin, WY
    Zhang, HQ
    Wang, XL
    RECENT ADVANCES IN FLUID MECHANICS, 2004, : 211 - 214
  • [10] On the Large Eddy Simulation of the Taylor-Green vortex
    Berselli, LC
    JOURNAL OF MATHEMATICAL FLUID MECHANICS, 2005, 7 (Suppl 2) : S164 - S191