Investigating the flow field dynamics of transonic shock buffet using particle image velocimetry

被引:5
|
作者
Kokmanian, Katherine [1 ]
Scharnowski, Sven [1 ]
Schaefer, Clara [1 ]
Accorinti, Alessandro [1 ]
Baur, Tim [1 ]
Kaehler, Christian J. [1 ]
机构
[1] Bundeswehr Univ Munich, Inst Fluid Mech & Aerodynam, Werner Heisenberg Weg 39, D-85577 Neubiberg, Germany
关键词
OSCILLATIONS; SIMULATION; AIRFOILS; ONSET;
D O I
10.1007/s00348-022-03499-2
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
An experimental investigation was performed in order to better understand the transonic shock buffet phenomenon and determine the dominant flow interactions at specific flow conditions. A rigid wing in the shape of an OAT15A airfoil was placed in the Trisonic Wind Tunnel Munich, where both the Mach number and the angle of attack were varied between 0.65 < M-infinity < 0.77 and 3.8 < alpha < 6.3 degrees respectively. With the use of high-speed imaging, high-quality optics and state-of-the-art laser equipment, highly resolved velocity field measurements were obtained via particle image velocimetry, where the streamwise and vertical velocity components were computed over the suction side of the wing center plane. It was shown that sustained buffet first occurs at M-infinity > 0.74 when maintaining the angle of attack constant at alpha = 5.8 degrees. Similarly, an increase in a for a fixed M-infinity = 0.74 also led to the development of shock buffet. Instantaneous snapshots confirmed the presence of a recirculation region downstream of the moving shock, where an increase in the wake size was confirmed when the shock was located most upstream. Streamwise correlations were also computed near the airfoil's upper surface in order to extract the characteristic convective velocity of flow structures. The convective velocity appeared to increase with streamwise distance, ranging on average between 50 and 150 m/s. Overall, these time-resolved velocity field measurements allow for the investigation of the flow dynamics during shock buffet and highlight the independent effect of Mach number and angle of attack on this complex phenomenon.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Flow diagnostics using particle image velocimetry method
    Mizeraczyk, Jerzy
    Kocik, Marek
    Podlinski, Janusz
    [J]. LASER TECHNOLOGY VIII: APPLICATIONS OF LASERS, 2007, 6598
  • [22] Full-field IC engine flow measurement using particle image velocimetry
    Reeves, M
    Garner, CP
    Dent, JC
    Halliwell, N
    [J]. OPTICAL ENGINEERING, 1996, 35 (02) : 579 - 587
  • [23] Flow field measurement inside the mouthpiece of the Spiros inhaler using particle image velocimetry
    Han, RJ
    Papadopoulos, G
    Greenspan, BJ
    [J]. AEROSOL SCIENCE AND TECHNOLOGY, 2002, 36 (03) : 329 - 341
  • [24] EXPERIMENTAL INVESTIGATION OF FLOW BLURRING ATOMIZER AT NEAR FIELD USING PARTICLE IMAGE VELOCIMETRY
    Murugan, Raju
    Sellan, Dhanalakshmi
    Kolhe, Pankaj S.
    [J]. PROCEEDINGS OF THE ASME GAS TURBINE INDIA CONFERENCE, 2019, VOL 2, 2020,
  • [25] Investigation of Flow Field at the Inlet of a Turbocharger Compressor Using Digital Particle Image Velocimetry
    Banerjee, Deb
    Dehner, Rick
    Selamet, Ahmet
    Tallio, Kevin
    Miazgowicz, Keith
    Keller, Philip
    Shutty, John
    [J]. JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2019, 141 (12):
  • [26] An investigation of wake-shock interactions in a transonic compressor with digital particle image velocimetry and time-accurate computational fluid dynamics
    Gorrell, Steven E.
    Car, David
    Puterbaugh, Steven L.
    Estevadeordal, Jordi
    Okiishi, Theodore H.
    [J]. JOURNAL OF TURBOMACHINERY-TRANSACTIONS OF THE ASME, 2006, 128 (04): : 616 - 626
  • [27] Particle Image Velocimetry Measurements in Accelerated, Transonic Wake Flows
    Judith Richter
    Charalampos Alexopoulos
    Bernhard Weigand
    [J]. Flow, Turbulence and Combustion, 2022, 109 : 667 - 696
  • [28] Particle Image Velocimetry Measurements in Accelerated, Transonic Wake Flows
    Richter, Judith
    Alexopoulos, Charalampos
    Weigand, Bernhard
    [J]. FLOW TURBULENCE AND COMBUSTION, 2022, 109 (03) : 667 - 696
  • [29] Flow Field Characterisation of Gaseous Flow in a Packed Bed by Particle Image Velocimetry
    Velten, C.
    Zaehringer, K.
    [J]. TRANSPORT IN POROUS MEDIA, 2023, 150 (02) : 307 - 326
  • [30] Flow Field Characterisation of Gaseous Flow in a Packed Bed by Particle Image Velocimetry
    C. Velten
    K. Zähringer
    [J]. Transport in Porous Media, 2023, 150 : 307 - 326