Experimental investigation of liquid jet injection into Mach 6 hypersonic crossflow

被引:0
作者
J. Beloki Perurena
C. O. Asma
R. Theunissen
O. Chazot
机构
[1] von Karman Institute for Fluid Dynamics,Shock Wave Laboratory
[2] RWTH Aachen University,Department of Flow, Heat and Combustion Mechanics
[3] Ghent University,Faculty of Aerospace Engineering
[4] Delft University of Technology,undefined
来源
Experiments in Fluids | 2009年 / 46卷
关键词
Flux Ratio; Lateral Extension; Probability Density Function; Counter Rotate Vortex Pair; Separation Shock;
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摘要
The injection of a liquid jet into a crossing Mach 6 air flow is investigated. Experiments were conducted on a sharp leading edge flat plate with flush mounted injectors. Water jets were introduced through different nozzle shapes at relevant jet-to-air momentum–flux ratios. Sufficient temporal resolution to capture small scale effects was obtained by high-speed recording, while directional illumination allowed variation in field of view. Shock pattern and flow topology were visualized by Schlieren-technique. Correlations are proposed on relating water jet penetration height and lateral extension with the injection ratio and orifice diameter for circular injector jets. Penetration height and lateral extension are compared for different injector shapes at relevant jet-to-air momentum–flux ratios showing that penetration height and lateral extension decrease and increase, respectively, with injector’s aspect ratio. Probability density function analysis has shown that the mixing of the jet with the crossflow is completed at a distance of x/dj ~ 40, independent of the momentum–flux ratio. Mean velocity profiles related with the liquid jet have been extracted by means of an ensemble correlation PIV algorithm. Finally, frequency analyses of the jet breakup and fluctuating shock pattern are performed using a Fast Fourier algorithm and characteristic Strouhal numbers of St = 0.18 for the liquid jet breakup and of St = 0.011 for the separation shock fluctuation are obtained.
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页码:403 / 417
页数:14
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