期刊文献+

Swirling-strength based large eddy simulation of turbulent flow around single square cylinder at low Reynolds numbers 被引量:4

Swirling-strength based large eddy simulation of turbulent flow around single square cylinder at low Reynolds numbers
下载PDF
导出
摘要 In view of the fact that large scale vortices play the substantial role of momentum transport in turbulent flows, large eddy simulation (LES) is considered as a better simulation model. However, the sub-grid scale (SGS) models reported so far have not ascertained under what flow conditions the LES can lapse into the direct nu-merical simulation. To overcome this discrepancy, this paper develops a swirling strength based the SGS model to properly model the turbulence intermittency, with the primary characteristics that when the local swirling strength is zero, the local sub-grid viscosity will be vanished. In this paper, the model is used to investigate the flow characteris-tics of zero-incident incompressible turbulent flows around a single square cylinder (SC) at a low Reynolds number range Re ∈ [103, 104]. The flow characteristics investigated include the Reynolds number dependence of lift and drag coefficients, the distributions of time-spanwise averaged variables such as the sub-grid viscosity and the logarithm of Kolmogorov micro-scale to the base of 10 at Re=2 500 and 104, the contours of spanwise and streamwise vorticity components at t = 170. It is revealed that the peak value of sub-grid viscosity ratio and its root mean square (RMS) values grow with the Reynolds number. The dissipation rate of turbulent kinetic energy is larger near the SC solid walls. The instantaneous factor of swirling strength intermittency (FSI) exhibits some laminated structure involved with vortex shedding. In view of the fact that large scale vortices play the substantial role of momentum transport in turbulent flows, large eddy simulation (LES) is considered as a better simulation model. However, the sub-grid scale (SGS) models reported so far have not ascertained under what flow conditions the LES can lapse into the direct nu-merical simulation. To overcome this discrepancy, this paper develops a swirling strength based the SGS model to properly model the turbulence intermittency, with the primary characteristics that when the local swirling strength is zero, the local sub-grid viscosity will be vanished. In this paper, the model is used to investigate the flow characteris-tics of zero-incident incompressible turbulent flows around a single square cylinder (SC) at a low Reynolds number range Re ∈ [103, 104]. The flow characteristics investigated include the Reynolds number dependence of lift and drag coefficients, the distributions of time-spanwise averaged variables such as the sub-grid viscosity and the logarithm of Kolmogorov micro-scale to the base of 10 at Re=2 500 and 104, the contours of spanwise and streamwise vorticity components at t = 170. It is revealed that the peak value of sub-grid viscosity ratio and its root mean square (RMS) values grow with the Reynolds number. The dissipation rate of turbulent kinetic energy is larger near the SC solid walls. The instantaneous factor of swirling strength intermittency (FSI) exhibits some laminated structure involved with vortex shedding.
出处 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2014年第8期959-978,共20页 应用数学和力学(英文版)
基金 Project supported by the National Natural Science Foundation of China(No.11372303)
关键词 large scale vortex lift and drag coefficient turbulence intermittency swirling strength large scale vortex lift and drag coefficient turbulence intermittency swirling strength
  • 相关文献

参考文献4

二级参考文献35

  • 1Instruction to Authors[J].Journal of Shanghai University(English Edition),2005,9(6). 被引量:1
  • 2[1]KOLMOGOROV A.N.The local structure of turbulence in incompressible viscous fluid for very large Reynolds number,Dokl.Akad.Nauk SSSR 1941,30:9-13,(Reprinted in Proc.Royal Soc.Lond.A,1991,434:9-13,).
  • 3[2]DEARDOFF J.W.The use of subgrid transport equation in a three dimensional model of atmospheric turbulence [ J] ASME J .Fluid Engineering 1973,95:429.
  • 4[3]FATICA M.et al.Validation of large-eddy simulation in a plain asymmetrical diffuser[ R].Annual Brief,Center for Turbulence Research 1997:22.
  • 5[4]KRAVCHENKO A G,MOIN P.Numerical studies of flow over a circular cylinder at Reo = 3900 [J].Physics of Fluids,200012:403.
  • 6[5]VASILYEV O V et al.General class of commutative filters for LES in complex geometry [J].J Computational Physics 1998,146:82.
  • 7[6]SMAGORINSKY J.General circulation experiments with primitive equation [ R].Monthly Weather Review 1963,91-99.
  • 8[7]BARDINA J et al.Improved subgrid model for large-eddy simulation [ R] AIAA paper 1980,80-1357.
  • 9[8]MENEVEAU C,KATZ J.Scale-invariance and turbulence models for Large-Eddy-Simulation [ R ].Annual Review of Fluid Mechanics 2000,32:1.
  • 10[9]GERMANO M et al.A dynamic subgrid-scale eddy viscosity model [J].Physics of Fluid 1991,A3:1760.

共引文献54

同被引文献20

引证文献4

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部