Droplet collision with hydrophobic and superhydrophobic surfaces: Experimental studies and numerical modeling

被引:2
|
作者
Antonov, D. V. [1 ]
Islamova, A. G. [1 ,2 ]
Orlova, E. G. [1 ,2 ]
Strizhak, P. A. [1 ,2 ]
机构
[1] Natl Res Tomsk Polytech Univ, Heat & Mass Transfer Lab, Tomsk 634050, Russia
[2] AN Frumkin Inst Phys Chem & Electrochem RAS, Moscow, Russia
基金
俄罗斯科学基金会;
关键词
Hydrophobic and superhydrophobic surfaces; Water droplet; Droplet-surface collision; Collision regime; Secondary fragments; IMPACT; TIME; SIMULATIONS; ALUMINUM;
D O I
10.1016/j.surfin.2024.104264
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The characteristics of the collision of water droplets with textured hydrophobic and superhydrophobic surfaces obtained using two techniques were studied experimentally. The surface processing techniques are based on laser modification of the surface layer and changes in its chemical composition. Weber numbers in the experiments were varied in the range of 10 - 200. Regimes of water droplet-surface collision, the critical conditions for the transition between regimes, as well as integral characteristics of the formed liquid fragments were identified. The main characteristics of the process under study, such as the droplet spreading diameter, the height of its rebound from the surface, the number of secondary fragments during its break up were obtained experimentally. A model with a two-dimensional axisymmetric formulation was used to predict the characteristics of water droplettextured surface collision based on the phase field method. The results of experimental studies and numerical modeling are in satisfactory agreement (differences of no more than 3 - 5 %). The conditions, when it is necessary to consider the values of static and dynamic contact angles during the modeling process, were determined.
引用
收藏
页数:17
相关论文
共 50 条
  • [31] DYNAMIC WETTING ON SUPERHYDROPHOBIC SURFACES: DROPLET IMPACT AND WETTING HYSTERESIS
    Smyth, Katherine
    Paxon, Adam
    Kwon, Hyuk-min
    Deng, Tao
    Varanasi, Kripa K.
    2010 12TH IEEE INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS, 2010,
  • [32] Modelling the impact, spreading and freezing of a water droplet on horizontal and inclined superhydrophobic cooled surfaces
    Yao, Yina
    Li, Cong
    Zhang, Hui
    Yang, Rui
    APPLIED SURFACE SCIENCE, 2017, 419 : 52 - 62
  • [33] Electrohydrodynamics of dielectric droplet collision on different wettability surfaces
    Sahoo, Nilamani
    Samanta, Devranjan
    Dhar, Purbarun
    PHYSICS OF FLUIDS, 2021, 33 (11)
  • [34] Aqueous dispersions of lipid nanoparticles wet hydrophobic and superhydrophobic surfaces
    Kumar, Manoj
    Kulkarni, Mayuresh A.
    Chembu, Narendiran G.
    Banpurkar, Arun
    Kumaraswamy, Guruswamy
    SOFT MATTER, 2018, 14 (02) : 205 - 215
  • [35] Modeling Receding Contact Lines on Superhydrophobic Surfaces
    Mognetti, B. M.
    Yeomans, J. M.
    LANGMUIR, 2010, 26 (23) : 18162 - 18168
  • [36] Droplet Impingement and Vapor Layer Formation on Hot Hydrophobic Surfaces
    Park, Ji Yong
    Gardner, Andrew
    King, William P.
    Cahill, David G.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2014, 136 (09):
  • [37] Fast droplet bouncing induced by asymmetric spreading on concave superhydrophobic surfaces
    Hou, Jianqiang
    Gong, Jianying
    Wu, Xin
    Huang, Qiwang
    Li, Yu
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2021, 622
  • [38] Water droplet impact on superhydrophobic surfaces with various inclinations and supercooling degrees
    Ding, Bin
    Wang, Hong
    Zhu, Xun
    Chen, Rong
    Liao, Qiang
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 138 (844-851) : 844 - 851
  • [39] Self-propelled droplet behavior during condensation on superhydrophobic surfaces
    Chu, Fuqiang
    Wu, Xiaomin
    Zhu, Bei
    Zhang, Xuan
    APPLIED PHYSICS LETTERS, 2016, 108 (19)
  • [40] Droplet impact dynamics for two liquids impinging on anisotropic superhydrophobic surfaces
    John T. Pearson
    Daniel Maynes
    Brent W. Webb
    Experiments in Fluids, 2012, 53 : 603 - 618