Large-eddy simulation of a tornado's interaction with the surface

被引:0
|
作者
Lewellen, WS
Lewellen, DC
Sykes, RI
机构
[1] W VIRGINIA UNIV,DEPT MECH & AEROSP ENGN,MORGANTOWN,WV 26506
[2] ARAP GRP,TITAN R&T DIV,PRINCETON,NJ
关键词
D O I
10.1175/1520-0469(1997)054<0581:LESOAT>2.0.CO;2
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
High-resolution, fully three-dimensional, unsteady simulations of the interaction of a tornado vortex with the surface were performed in an attempt to answer questions about the character of turbulent transport in this unique flow. The authors demonstrate that sufficient resolution was achieved for the particular physical conditions of their example that the time-averaged velocity and pressure distributions showed little sensitivity in the region of maximum velocities to either finer resolution or modified subgrid turbulent model. The time-averaged velocity distributions show the maximum velocity values occurring within 50 m of the surface. The instantaneous velocity distributions show the turbulence dominated by a relatively small number of strong secondary vortices spiralling around the main vortex with the maximum instantaneous velocities typically one-third larger than the maximum time-averaged velocity. These eddies are centered a little inside of the cone of maximum mean swirl velocity and spiral around the mean vortex at velocities less than the average maximum velocity. Statistical analysis of the velocity fluctuations induced by the secondary vortices shows that the turbulent transport of angular momentum is predominantly inward at low levers, allowing the inner recirculating flow to acquire values of angular momentum of up to 30% of that provided by the inflow boundary conditions, thus enhancing the surface intensification of the velocities.
引用
收藏
页码:581 / 605
页数:25
相关论文
共 50 条
  • [41] Large-Eddy Simulation of Subsonic Jets
    Vuorinen, Ville
    Wehrfritz, Armin
    Yu, Jingzhou
    Kaario, Ossi
    Larmi, Martti
    Boersma, Bendiks Jan
    13TH EUROPEAN TURBULENCE CONFERENCE (ETC13): INSTABILITY, TRANSITION, GRID TURBULENCE AND JETS, 2011, 318
  • [42] Large-Eddy Simulation of transcritical flows
    Schmitt, T.
    Selle, L.
    Cuenot, B.
    Poinsot, T.
    COMPTES RENDUS MECANIQUE, 2009, 337 (6-7): : 528 - 538
  • [43] Large-Eddy Simulation Of Radiation Fog
    Mikio Nakanishi
    Boundary-Layer Meteorology, 2000, 94 : 461 - 493
  • [44] Large-eddy simulation without filter
    Knaepen, B
    Debliquy, O
    Carati, D
    JOURNAL OF COMPUTATIONAL PHYSICS, 2005, 205 (01) : 98 - 107
  • [45] Large-eddy simulation and multigrid methods
    Nägele, S
    Wittum, G
    ELECTRONIC TRANSACTIONS ON NUMERICAL ANALYSIS, 2003, 15 : 152 - 164
  • [46] Large-eddy simulation: How large is large enough?
    de Roode, SR
    Duynkerke, PG
    Jonker, HJJ
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2004, 61 (04) : 403 - 421
  • [47] Large-eddy simulation of katabatic flows
    Skyllingstad, ED
    BOUNDARY-LAYER METEOROLOGY, 2003, 106 (02) : 217 - 243
  • [48] Large-eddy simulation of a stratocumulus cloud
    Matheou, Georgios
    Chung, Daniel
    Teixeira, Joao
    PHYSICAL REVIEW FLUIDS, 2017, 2 (09):
  • [49] LARGE-EDDY SIMULATION AND PRACTICAL MODELS
    BOUWMANS, I
    MEEDER, JP
    NIEUWSTADT, FTM
    INTERNATIONAL JOURNAL OF ENVIRONMENT AND POLLUTION, 1995, 5 (4-6) : 331 - 337
  • [50] Large-eddy simulation of turbulent sprays
    Menon, S
    Sankaran, V
    IUTAM SYMPOSIUM ON TURBULENT MIXING AND COMBUSTION, 2002, 70 : 415 - 425