Experimental investigation of Gortler vortices in hypersonic ramp flows

被引:51
|
作者
Roghelia, Amit [1 ]
Olivier, Herbert [1 ]
Egorov, Ivan [2 ]
Chuvakhov, Pavel [2 ]
机构
[1] Rhein Westfal TH Aachen, Shock Wave Lab, Templergraben 55, D-52062 Aachen, Germany
[2] Cent Aerohydrodynam Inst TsAGI, 1 Zukovskogo Str, Zhukovskii 140180, Moscow Region, Russia
关键词
BOUNDARY-LAYER INTERACTION; COMPRESSION CORNER; HEAT-TRANSFER; SEPARATION; ENTHALPY;
D O I
10.1007/s00348-017-2422-y
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A sharp leading-edge ramp model with 15 degrees, 20 degrees, and 25 degrees ramp angles is experimentally investigated at a freestream Mach number 7.7 and a unit Reynolds number 4.2 x 106 m(-1) in the Aachen Shock Tunnel TH2. The objective of this paper is to analyze Gortler vortices in terms of shear layer length, flow curvature, and vortex related parameters. The spanwise heat flux variation caused by it and the streamwise heat flux enhancement during its tenure are also studied. Thermocouples, pressure sensors, schlieren imagery, and infrared imaging are used for the investigation. The boundary layer on the flat plate until separation is laminar. An important outcome is that the arc length at reattachment is constant irrespective of the ramp angle. Characteristic boundary layer thicknesses at different Mach number show that the momentum thickness is insensitive to compressibility and is used to determine the Gortler number. A model is presented to determine the Gortler number in terms of ramp angle and a constant based on separation angle, arc length, momentum thickness, and Reynolds number. The half of the vortex wavelength is equal to the boundary layer thickness just before reattachment. The length scale required for breakdown of Gortler vortices decreases with rising ramp angle and is analogous to peak heating length. The streamwise heat flux enhancement occurs during the tenure of Gortler vortices and the enhancement rises with ramp angle. Although the visibility of Gortler vortices through temperature variation is distinct, the spanwise heat flux variation is not too high. Moreover, the spanwise heat flux variation rises marginally with ramp angle.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Experimental investigation of Gortler vortices in hypersonic ramp flows (vol 58, 139, 2017)
    Roghelia, Amit
    Olivier, Herbert
    Egorov, Ivan
    Chuvakhov, Pavel
    EXPERIMENTS IN FLUIDS, 2017, 58 (12)
  • [2] Gortler-type vortices in hypersonic flows: The ramp problem
    delaChevalerie, DA
    Fonteneau, A
    de Luca, L
    Cardone, G
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 1997, 15 (02) : 69 - 81
  • [3] Experimental investigation of Görtler vortices in hypersonic ramp flows
    Amit Roghelia
    Herbert Olivier
    Ivan Egorov
    Pavel Chuvakhov
    Experiments in Fluids, 2017, 58
  • [4] Correction to: Experimental investigation of Görtler vortices in hypersonic ramp flows
    Amit Roghelia
    Herbert Olivier
    Ivan Egorov
    Pavel Chuvakhov
    Experiments in Fluids, 2017, 58
  • [5] Computation of Gortler vortices in separated hypersonic flows
    Lüdeke, H
    COMPUTATIONAL FLUID DYNAMICS 2000, 2001, : 171 - 176
  • [6] Investigation of Gortler vortices in a hypersonic double compression ramp flow by means of infrared thermography
    Schrijer, Ferry
    QUANTITATIVE INFRARED THERMOGRAPHY JOURNAL, 2010, 7 (02) : 201 - 215
  • [7] Gortier-type vortices in hypersonic flows: The ramp problem
    Aymer, De La Chevalerie, Dominique
    Fonteneau, A.
    De, Luca, L.
    Cardone, G.
    1997, Elsevier Inc. (15)
  • [8] Experimental investigations on transition of hypersonic ramp flows
    Bleilebens, M
    Olivier, H
    PROCEEDINGS OF THE THIRD EUROPEAN SYMPOSIUM ON AEROTHERMODYNAMICS FOR SPACE VEHICLES, 1999, 420 : 205 - 212
  • [9] Gortler Vortices in Hypersonic Flow on Compression Ramps
    Cao, Shibin
    Klioutchnikov, Igor
    Olivier, Herbert
    AIAA JOURNAL, 2019, 57 (09) : 3874 - 3884
  • [10] Numerical simulation of Gortler vortices in hypersonic compression ramps
    Navarro-Martinez, S
    Tutty, OR
    COMPUTERS & FLUIDS, 2005, 34 (02) : 225 - 247