Simulation of liquid jet primary breakup: Dynamics of ligament and droplet formation

被引:369
|
作者
Shinjo, J. [1 ]
Umemura, A. [2 ]
机构
[1] Japan Aerosp Explorat Agcy, Aerosp Res & Dev Directorate, Numer Anal Grp, Chofu, Tokyo 1828522, Japan
[2] Nagoya Univ, Dept Aerosp Engn, Chikusa Ku, Nagoya, Aichi 4648603, Japan
关键词
DNS; Primary breakup; Ligament; Droplet;
D O I
10.1016/j.ijmultiphaseflow.2010.03.008
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Primary atomization of liquid injected at high speed into still air is investigated to elucidate physical processes by direct numerical simulation. With sufficient grid resolution, ligament and droplet formation can be captured in a physically sound way. Ligament formation is triggered by the liquid jet tip roll-up, and later ligaments are also produced from the disturbed liquid core surface in the upstream. Ligament production direction is affected by gas vortices. Disturbances are fed from the liquid jet tip toward upstream through vortices and droplet re-collision. When the local gas Weber number is O(1), ligaments are created, thus the ligament or droplet scale becomes smaller as the bulk Weber number increases. Observation of droplet formation from a ligament provides insights into the relevance between the actual droplet formation and pinch-off from a slow liquid jet in laboratory experiments. In the spray, the dominant mode is the short-wave mode driven by propagative capillary wave from the ligament tip. An injection nozzle that is necessary for a slow jet is absent for a ligament, thus the long-wave (Rayleigh) mode is basically not seen without the effect of stretch. By the present simulation, a series of physical processes have been revealed. The present result will be extended to LES modeling in the future. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:513 / 532
页数:20
相关论文
共 50 条
  • [31] Primary breakup simulation of a liquid jet discharged by a low-pressure compound nozzle
    Cousin, Jean
    Berlemont, Alain
    Menard, Thibaut
    Grout, Sebastien
    COMPUTERS & FLUIDS, 2012, 63 : 165 - 173
  • [32] A ROBUST FRONT TRACKING METHOD: VERIFICATION AND APPLICATION TO SIMULATION OF THE PRIMARY BREAKUP OF A LIQUID JET
    Bo, Wurigen
    Liu, Xingtao
    Glimm, James
    Li, Xiaolin
    SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2011, 33 (04): : 1505 - 1524
  • [33] Large eddy simulation and experiment of shear breakup in liquid-liquid jet: Formation of ligaments and droplets
    Daskiran, Cosan
    Xue, Xinzhi
    Cui, Fangda
    Katz, Joseph
    Boufadel, Michel C.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2021, 89
  • [34] Primary breakup of liquid jet-Effect of jet velocity profile
    Srinivasan, Balaji
    Sinha, Anubhav
    PHYSICS OF FLUIDS, 2024, 36 (03)
  • [35] Primary breakup process of liquid jet in supersonic crossflow
    Li C.
    Shen C.
    Li Q.
    Zhu Y.
    Guofang Keji Daxue Xuebao/Journal of National University of Defense Technology, 2019, 41 (04): : 73 - 78
  • [36] Lattice Boltzmann modeling and simulation of liquid jet breakup
    Saito, Shimpei
    Abe, Yutaka
    Koyama, Kazuya
    PHYSICAL REVIEW E, 2017, 96 (01)
  • [37] A model for numerical simulation of breakup of a liquid jet in crossflow
    Madabhushi, RK
    ATOMIZATION AND SPRAYS, 2003, 13 (04) : 413 - 424
  • [38] Active control of jet breakup and droplet formation using temperature modulation
    Kamis, Yavuz Emre
    Eral, Huseyin Burak
    Breugem, Wim-Paul
    PHYSICAL REVIEW FLUIDS, 2021, 6 (10)
  • [39] Simulation of liquid jet atomization and droplet breakup via a Volume-of-Fluid Lagrangian-Eulerian strategy
    Kuo, Chia-Wei
    Trujillo, Mario F.
    PHYSICS OF FLUIDS, 2022, 34 (11)
  • [40] Simulation of liquid jet primary breakup in a supersonic crossflow under Adaptive Mesh Refinement framework
    Liu, Nan
    Wang, Zhenguo
    Sun, Mingbo
    Deiterding, Ralf
    Wang, Hongbo
    AEROSPACE SCIENCE AND TECHNOLOGY, 2019, 91 : 456 - 473