• DocumentCode
    2029690
  • Title

    LES and DES of High Reynolds Number, Supersonic Base Flows with Control of the Near Wake

  • Author

    Sivasubramanian, J. ; Fasel, H.F.

  • Author_Institution
    Dept. of Aerosp. & Mech. Eng., Arizona Univ., Tucson, AZ
  • fYear
    2006
  • fDate
    38869
  • Firstpage
    80
  • Lastpage
    90
  • Abstract
    The drag associated with supersonic base flows is of critical importance for the design of aerodynamic bodies, such as missiles and projectiles. The base drag which accounts for a significant part of the total drag may be reduced by means of active and passive control of the near wake. There is evidence that large (turbulent) coherent structures evolve in these flows and strongly influence the mean flow. Therefore, in order to understand the dynamics of coherent structures in the wake and how flow control mechanisms modify these structures, numerical simulations were conducted. We performed large-eddy simulations (LES) based on the flow simulation methodology (FSM) for a Reynolds number of ReD = 100,000 and Mach number M = 2.46 using a high-order accurate research code, which was developed at the University of Arizona. Flow control mechanisms that alter the near wake by introducing axisymmetric and three-dimensional perturbations, thus emulating active and passive flow control were investigated. We also studied supersonic base flows at Reynolds number ReD = 3,300,000 and Mach number M = 2.46 using detached-eddy simulations (DES). These investigations were performed using the commercial CFD-code Cobalt. In addition, for the same Reynolds number, we investigated passive flow control using afterbody boat-tailing. Our results are compared to available experimental data
  • Keywords
    Mach number; aerospace control; computational fluid dynamics; drag reduction; flow control; flow simulation; supersonic flow; wakes; 3D perturbations; Cobalt CFD-code; Mach number; Reynolds number; afterbody boat-tailing; axisymmetric perturbations; detached-eddy simulations; flow control; flow simulation; large-eddy simulations; near wake control; numerical simulations; supersonic base flows; Aerodynamics; Computational fluid dynamics; Drag; Fluid dynamics; Military computing; Missiles; Numerical simulation; Physics computing; Projectiles; Vehicle dynamics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    HPCMP Users Group Conference, 2006
  • Conference_Location
    Denver, CO
  • Print_ISBN
    0-7695-2797-3
  • Type

    conf

  • DOI
    10.1109/HPCMP-UGC.2006.42
  • Filename
    4134037