The structure of an acoustically forced, droplet-laden jet

被引:16
|
作者
Swanson, TR
Richards, CD
机构
[1] Sch. of Mech./Materials Engineering, Washington State University, Pullman, WA
关键词
D O I
10.1615/AtomizSpr.v7.i6.10
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A detailed characterization of the interaction of a polydisperse spray with large-scale vortical structures in a jet is presented. Phase Doppler interferometry is used to acquire droplet size and velocity information. Planar imaging techniques are applied to document the distribution of droplets and their number density within structures. The presence of large-scale structures results in large local variations of droplet number density. images taken through the cross section of a large-scale structure provide evidence that azimuthal structures contribute to the dispersion of droplets. Size measurements show that, in general, only droplets with Stokes number less than unity are found on the outer edge of vortical structures. However, even for very small droplets (Stokes number < 0.1), a substantial portion of the vortex center is void of droplets. Radial velocity measurements show that droplets have an outward radial velocity on the lending edges and as inward radial velocity on the trailing edges of structures. Axial velocity measurements show complex size-velocity correlations within structures among different droplet size classes. Size-velocity correlations become less distinct across the jet due to the transport of droplets by large-scale vortical structures.
引用
收藏
页码:561 / 579
页数:19
相关论文
共 50 条
  • [21] A STAGNATION PRESSURE PROBE FOR DROPLET-LADEN AIR-FLOW
    MURTHY, SNB
    LEONARDO, M
    EHRESMAN, CM
    JOURNAL OF PROPULSION AND POWER, 1986, 2 (03) : 195 - 196
  • [22] Particle-Laden and Droplet-Laden Two-Phase Flows Past Bodies (a Review)
    Varaksin, Aleksey Yu.
    Ryzhkov, Sergei V.
    SYMMETRY-BASEL, 2023, 15 (02):
  • [23] Numerical investigation on the heat transfer of a droplet-laden flow in a microfluidic system
    Wang, Rui-jin
    INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2017, 27 (02) : 444 - 453
  • [24] Edge flame propagation statistics in igniting monodisperse droplet-laden mixtures
    Papapostolou, V. S.
    d'Auzay, C. Turquand
    Erol, G. Ozel
    Chakraborty, N.
    PHYSICS OF FLUIDS, 2019, 31 (10)
  • [25] Numerical prediction of airfoil characteristics in a transonic droplet-laden air flow
    Yeom, Geum-Su
    Chang, Keun-Shik
    Baek, Seung Wook
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2012, 55 (1-3) : 453 - 469
  • [26] ULTRASTRUCTURAL APPEARANCE OF HYALINE DROPLET-LADEN CELLS IN THE GLOMERULAR MESANGIUM OF PIGS
    SHIROTA, K
    NOMURA, Y
    VETERINARY PATHOLOGY, 1994, 31 (06) : 705 - 707
  • [27] Velocity and temperature statistics in reacting droplet-laden homogeneous shear turbulence
    Mashayek, F
    JOURNAL OF PROPULSION AND POWER, 2001, 17 (01) : 197 - 202
  • [28] Extension of a CLSVOF method for droplet-laden flows with a coalescence/breakup model
    Kwakkel, Marcel
    Breugem, Wim-Paul
    Boersma, Bendiks Jan
    JOURNAL OF COMPUTATIONAL PHYSICS, 2013, 253 : 166 - 188
  • [29] PDA LASER MEASUREMENTS OF DROPLET-LADEN FLOWS IN A FOUR STAGE AXIAL COMPRESSOR
    Doerr, Tobias
    Schuster, Sebastian
    Brillert, Dieter
    PROCEEDINGS OF ASME TURBO EXPO 2022: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2022, VOL 10A, 2022,
  • [30] Effect of Droplet-Laden Fibers on Aerodynamics of Fog Collection on Vertical Fiber Arrays
    Goswami, Sohom
    Sidhpuria, Ravi M.
    Khandekar, Sameer
    LANGMUIR, 2023, 39 (50) : 18238 - 18251