Analysis of the Forces Driving the Oscillations in 3D Fluidic Oscillators

被引:15
作者
Baghaei, Masoud [1 ]
Bergada, Josep M. [1 ]
机构
[1] Univ Politecn Cataluna, Dept Fluid Mech, ES-08034 Barcelona, Spain
关键词
fluidic oscillators design; 3D-computational fluid dynamics (CFD); flow control; forces driving the oscillation; FLOW; FREQUENCY; VISUALIZATION; ACTUATORS;
D O I
10.3390/en12244720
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
One of the main advantages of fluidic oscillators is that they do not have moving parts, which brings high reliability whenever being used in real applications. To use these devices in real applications, it is necessary to evaluate their performance, since each application requires a particular injected fluid momentum and frequency. In this paper, the performance of a given fluidic oscillator is evaluated at different Reynolds numbers via a 3D-computational fluid dynamics (CFD) analysis. The net momentum applied to the incoming jet is compared with the dynamic maximum stagnation pressure in the mixing chamber, to the dynamic output mass flow, to the dynamic feedback channels mass flow, to the pressure acting to both feedback channels outlets, and to the mixing chamber inlet jet oscillation angle. A perfect correlation between these parameters is obtained, therefore indicating the oscillation is triggered by the pressure momentum term applied to the jet at the feedback channels outlets. The paper proves that the stagnation pressure fluctuations appearing at the mixing chamber inclined walls are responsible for the pressure momentum term acting at the feedback channels outlets. Until now it was thought that the oscillations were driven by the mass flow flowing along the feedback channels, however in this paper it is proved that the oscillations are pressure driven. The peak to peak stagnation pressure fluctuations increase with increasing Reynolds number, and so does the pressure momentum term acting onto the mixing chamber inlet incoming jet.
引用
收藏
页数:19
相关论文
共 41 条
  • [11] Gregory J., 2013, 43rd AIAA Fluid Dynamics Conference, P2474
  • [12] Guyot D, 2008, 44 AIAA ASME SAE ASE, P4956
  • [13] Schlieren Visualization and Analysis of Sweeping Jet Actuator Dynamics
    Hirsch, Damian
    Gharib, Morteza
    [J]. AIAA JOURNAL, 2018, 56 (08) : 2947 - 2960
  • [14] Experimental and Numerical Investigation of Sweeping Jet Film Cooling
    Hossain, Mohammad A.
    Prenter, Robin
    Lundgreen, Ryan K.
    Ameri, Ali
    Gregory, James W.
    Bons, Jeffrey P.
    [J]. JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2018, 140 (03):
  • [15] Fluidic oscillation influences on V-shaped bluffbody flow
    Huang, RF
    Chang, KT
    [J]. AIAA JOURNAL, 2005, 43 (11) : 2319 - 2328
  • [16] Kara Kursat., 2015, 33rd AIAA Applied Aerodynamics Conference, page, P2424
  • [17] Kruger O., 2013, 21 AIAA COMP FLUID D, P3087
  • [18] Scaling Considerations for Fluidic Oscillator Flow Control on the Square-back Ahmed Vehicle Model
    Metka, Matthew
    Gregory, James
    Sassoon, Aaron
    McKillen, James
    [J]. SAE INTERNATIONAL JOURNAL OF PASSENGER CARS-MECHANICAL SYSTEMS, 2015, 8 (01): : 328 - 337
  • [19] Ostermann F., 2015, 53 AIAA AER SCI M, P0781
  • [20] The interaction between a spatially oscillating jet emitted by a fluidic oscillator and a cross-flow
    Ostermann, Florian
    Woszidlo, Rene
    Nayeri, C. Navid
    Paschereit, C. Oliver
    [J]. JOURNAL OF FLUID MECHANICS, 2019, 863 : 215 - 241