Mulitpoint Correlations in Direct Numerical Simulations

被引:0
作者
Stoevesandt, Bernhard [1 ]
Shishkin, Andrei [2 ]
Stresing, Robert [1 ]
Peinke, Joachim [1 ]
机构
[1] Carl von Ossietzky Univ Oldenburg, Carl Von Ossietzky Str 9-12, D-26129 Oldenburg, Germany
[2] DLR, D-37073 Gottingen, Germany
来源
NUMERICAL ANALYSIS AND APPLIED MATHEMATICS, VOLS 1 AND 2 | 2009年 / 1168卷
关键词
Spectral Element; DNS; Airfoil; Stochastics; Turbulence; Fokker-Plack equation; Reynolds stress; TURBULENT; WAKE;
D O I
暂无
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
We examine the Markov properties of the three components of a turbulent flow generated by a DNS simulation of the flow around an air-foil section. The spectral element code Nektar has been used to generate a highly resolved flow field around an fx79w-151a airfoil profile at a Reynolds number of Re=5000 and an angle of attack of alpha = 12 degrees. Due to a homogeneous geometry in the spanwise direction, a Fourier expansion has been used for the third dimension of the simulation. In the wake of the profile the flow field shows a von Karman street like behavior with the vortices decaying in the wake. Beneath a turbulent field appears. Time series of the 3D flow field were extracted from the flow field to analyse Markov properties of the flow field in different areas in the surrounding of the airfoil. The aim is to evaluate if the n-point correlations and Reynolds stresses can be approximated by a stochastic process governed by a Fokker-Planck equation, which could be the basis of a stochastic closure of the Reynolds equations. Here the method and first results are being shown.
引用
收藏
页码:669 / +
页数:2
相关论文
共 50 条
  • [41] Characterisation and Design of Direct Numerical Simulations of Turbulent Statistically Planar Flames
    Sternin, Andrej
    Martinez, Daniel
    Sternin, Daniel
    Haidn, Oskar
    Tajmar, Martin
    AEROSPACE, 2022, 9 (10)
  • [42] Sensitivities of direct numerical simulations to chemical kinetic uncertainties: spherical flame kernel evolution of a real jet fuel
    Zhao, Xinyu
    Tao, Yujie
    Lu, Tianfeng
    Wang, Hai
    COMBUSTION AND FLAME, 2019, 209 : 117 - 132
  • [43] Stencil adaptation properties of a WENO scheme in direct numerical simulations of compressible turbulence
    Taylor, Ellen M.
    Martín, M. Pino
    JOURNAL OF SCIENTIFIC COMPUTING, 2007, 30 (03) : 533 - 554
  • [44] Lagrangian Droplet Dynamics in the Subsiding Shell of a Cloud Using Direct Numerical Simulations
    Perrin, Vincent E.
    Jonker, Harmen J. J.
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2015, 72 (10) : 4015 - 4028
  • [45] Resilience of helical fields to turbulent diffusion - II. Direct numerical simulations
    Bhat, Pallavi
    Blackman, Eric G.
    Subramanian, Kandaswamy
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2014, 438 (04) : 2954 - 2966
  • [46] Direct numerical simulations of vortex shedding behind cylinders with spanwise linear nonuniformity
    Parnaudeau, P.
    Heitz, D.
    Lamballais, E.
    Silvestrini, J.-H.
    JOURNAL OF TURBULENCE, 2007, 8 (13): : 1 - 13
  • [47] Direct numerical simulations of compressible turbulent channel flows with asymmetric thermal walls
    Zhang, Peng
    Song, Yubin
    Xia, Zhenhua
    JOURNAL OF FLUID MECHANICS, 2024, 984
  • [48] Nonlinear wave-wave interactions in stratified flows: Direct numerical simulations
    Lvov, Yuri V.
    Yokoyama, Naoto
    PHYSICA D-NONLINEAR PHENOMENA, 2009, 238 (08) : 803 - 815
  • [49] Direct numerical simulations of 2D channel flows in the presence of polymers
    Xiong, Y. L.
    Bruneau, C. H.
    Kellay, H.
    EPL, 2011, 95 (06)
  • [50] Direct Numerical Simulations of Transonic Flow Around an Airfoil at Moderate Reynolds Numbers
    Zauner, Markus
    De Tullio, Nicola
    Sandham, Neil D.
    AIAA JOURNAL, 2019, 57 (02) : 597 - 607