Numerical simulation of the crossing of a liquid-liquid interface by a droplet

被引:5
|
作者
El Itawi, Hassan [1 ,2 ]
Lalanne, Benjamin [1 ]
Massiera, Gladys [2 ]
Le Sauze, Nathalie [1 ]
Masbernat, Olivier [1 ]
机构
[1] Univ Toulouse, Lab Genie Chim, UPS, INPT,CNRS, Toulouse, France
[2] Univ Montpellier, Lab Charles Coulomb, CNRS, Montpellier, France
关键词
REYNOLDS-NUMBER; RIGID SPHERE; FLUID; MOTION; BUBBLES; BEHAVIOR; DRAINAGE; FLOWS; FILM;
D O I
10.1103/PhysRevFluids.5.093601
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Numerical simulations of a drop crossing a plane liquid-liquid interface in a centrifugal field are performed using the level-set method. The objective is to characterize the hydrodynamical parameters controlling the coating volume of the droplet, which results from the rupture of the liquid column of the lighter phase entrained by the droplet during the crossing of the interface in the tailing regime. The numerical method is validated first in two-phase flow simulations of a drop rising in a stagnant liquid and then in three-phase flow configurations to reproduce the theoretical critical condition for a drop to cross an interface in static conditions (without initial velocity). Then, in inertial conditions, extensive simulations of crossing droplets are performed in a wide range of flow parameters and phase properties for two types of drop: solidlike droplets (mimicking rigid particles) and deformable drops. The crossing criterion is found to remain very close to that given by the theory in static conditions, for either a spherical or a deformed droplet. For each case studied, the crossing time, the maximum length of the column of liquid pulled by the droplet, and the volume encapsulating the drop after crossing are computed and scaled as a function of an inertia parameter, which is the ratio F* between the inertial stresses pushing on the interface, defined from the minimum drop velocity reached during crossing as the characteristic velocity, and the opposite stress pulling back the entrained column towards the interface. The maximal column length increases with F* (when rescaled by the minimal inertial required for crossing) under two distinct growth rates according to the flow regime in the column. For solidlike drops, the final coating volume is a unique function of F* and grows with F* at large inertia. In the case of deformable droplets, the coating volume evolution can also be well predicted by F* but corrected by the drop-to-film viscosity ratio, which strongly affects the drainage rate of the film along the drop surface during the encapsulation process.
引用
下载
收藏
页数:29
相关论文
共 50 条
  • [41] DROPLET DIAMETERS IN AGITATED LIQUID-LIQUID SYSTEMS
    BAIRD, MHI
    CHEMICAL ENGINEERING SCIENCE, 1979, 34 (11) : 1362 - 1362
  • [42] Droplet formation-a numerical investigation of liquid-liquid systems with consideration of Marangoni convection
    Wecker, Christian
    Schulz, Andreas
    Heine, Jens
    Bart, Hans-Joerg
    Kenig, Eugeny Y.
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2022, 188
  • [43] Numerical simulation and experimental investigation of mass transfer in liquid-liquid jets
    Ghanadi, A. Mirzazadeh
    Nasab, A. Heydari
    Bastani, D.
    BULGARIAN CHEMICAL COMMUNICATIONS, 2014, 46 (03): : 652 - 657
  • [44] Numerical simulation of liquid-liquid agitated dispersions on the VAX 6520/VP
    Ribeiro, LM
    Regueiras, PFR
    Guimaraes, MML
    CruzPinto, JJC
    COMPUTING SYSTEMS IN ENGINEERING, 1995, 6 (4-5): : 465 - 469
  • [45] Numerical simulation of macro-mixing in liquid-liquid stirred tanks
    Cheng, Dang
    Feng, Xin
    Cheng, Jingcai
    Yang, Chao
    CHEMICAL ENGINEERING SCIENCE, 2013, 101 : 272 - 282
  • [46] SIMULATION OF LIQUID-LIQUID EXTRACTORS
    BADRINARAYAN, B
    CHIDAMBARAM, M
    CHEMICAL ENGINEERING COMMUNICATIONS, 1990, 95 : 121 - 129
  • [47] Lattice Boltzmann Simulation of Jet Breakup and Droplet Formation in Immiscible Liquid-Liquid System
    Saito, Shimpei
    Abe, Yutaka
    Kaneko, Akiko
    Iwasawa, Yuzuru
    Koyama, Kazuya
    PROCEEDINGS OF THE 25TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, 2017, VOL 6, 2017,
  • [48] A Method for Probing the Liquid-Liquid Interface
    Ren, Lichun
    Song, Tianqi
    Yoo, Il-sou
    Ren, Hongwen
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2012, 51 (09)
  • [49] Reaction velocity at a liquid-liquid interface
    Bell, RP
    JOURNAL OF PHYSICAL CHEMISTRY, 1928, 32 (06): : 882 - 893
  • [50] THE LIQUID-LIQUID INTERFACE OF SIMPLE LIQUIDS
    STECKI, J
    TOXVAERD, S
    JOURNAL OF CHEMICAL PHYSICS, 1995, 103 (10): : 4352 - 4359