Numerical aerodynamic analysis of bluff bodies at a high Reynolds number with three-dimensional CFD modeling

被引:0
|
作者
YuGuang Bai
Kai Yang
DongKe Sun
YuGuang Zhang
David Kennedy
Fred Williams
XiaoWei Gao
机构
[1] Dalian University of Technology,State Key Laboratory of Structural Analysis for Industrial Equipment, Faculty of Vehicle Engineering and Mechanics
[2] Cardiff University,Cardiff School of Engineering
[3] Cardiff,undefined
关键词
bluff body; aerodynamic analysis; fluid-structure interaction; three-dimensional CFD modeling; flutter;
D O I
暂无
中图分类号
学科分类号
摘要
This paper focuses on numerical simulations of bluff body aerodynamics with three-dimensional CFD (computational fluid dynamics) modeling, where a computational scheme for fluid-structure interactions is implemented. The choice of an appropriate turbulence model for the computational modeling of bluff body aerodynamics using both two-dimensional and three-dimensional CFD numerical simulations is also considered. An efficient mesh control method which employs the mesh deformation technique is proposed to achieve better simulation results. Several long-span deck sections are chosen as examples which were stationary and pitching at a high Reynolds number. With the proposed CFD method and turbulence models, the force coefficients and flutter derivatives thus obtained are compared with the experimental measurement results and computed values completely from commercial software. Finally, a discussion on the effects of oscillation amplitude on the flutter instability of a bluff body is carried out with extended numerical simulations. These numerical analysis results demonstrate that the proposed three-dimensional CFD method, with proper turbulence modeling, has good accuracy and significant benefits for aerodynamic analysis and computational FSI studies of bluff bodies.
引用
收藏
页码:277 / 289
页数:12
相关论文
共 50 条
  • [31] A three-dimensional unsteady numerical analysis for a plate-finned tube heat exchanger in the middle Reynolds number range
    Onishi, H
    Inaoka, K
    Suzuki, K
    COMPACT HEAT EXCHANGERS AND ENHANCEMENT TECHNOLOGY FOR THE PROCESS INDUSTRIES-2001, 2001, : 9 - 16
  • [32] Investigation of the three-dimensional intermediate wake topology for a square cylinder at high Reynolds number
    A. Dobre
    H. Hangan
    Experiments in Fluids, 2004, 37 : 518 - 530
  • [33] Computation of three-dimensional viscous flow in high Reynolds number pump guide vane
    Yu, WS
    Lakshminarayana, B
    Thompson, DE
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1996, 118 (04): : 698 - 705
  • [35] Three-dimensional conditional structure of a high-Reynolds-number turbulent boundary layer
    Hutchins, N.
    Monty, J. P.
    Ganapathisubramani, B.
    Ng, H. C. H.
    Marusic, I.
    JOURNAL OF FLUID MECHANICS, 2011, 673 : 255 - 285
  • [36] Investigation of the three-dimensional intermediate wake topology for a square cylinder at high Reynolds number
    Dobre, A
    Hangan, H
    EXPERIMENTS IN FLUIDS, 2004, 37 (04) : 518 - 530
  • [37] Reynolds number effects on three-dimensional vorticity in a turbulent wake
    Yiu, MW
    Zhou, Y
    Zhou, T
    Cheng, L
    AIAA JOURNAL, 2004, 42 (05) : 1009 - 1016
  • [38] Near wake flows behind two- and three-dimensional bluff bodies
    Dept of Aeronautics, Imperial College of Science, Technology and Medicine, London SW7 2BY, United Kingdom
    Journal of Wind Engineering and Industrial Aerodynamics, 1997, 69-71 : 33 - 54
  • [39] Aerodynamic analysis of an iced airfoil at medium/high reynolds number
    Marongiu, C.
    Vitagliano, P.L.
    Zanazzi, G.
    Narducci, R.
    AIAA Journal, 2008, 46 (10): : 2469 - 2478
  • [40] Time resolved torque of three-dimensional rotating bluff bodies in a cylindrical tank
    Maynes, D
    Klewicki, J
    McMurtry, P
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1998, 120 (01): : 23 - 28