Behavior of a Liquid Bridge between Nonparallel Hydrophobic Surfaces

被引:13
|
作者
Ataei, Mohammadmehdi [1 ]
Chen, Huanchen [1 ]
Amirfazli, Alidad [1 ]
机构
[1] York Univ, Dept Mech Engn, Toronto, ON M3J 1P3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
CAPILLARY BRIDGES; PLATES; DROPLET; PARTICLES; TRANSPORT; STABILITY; PARALLEL; WEDGE;
D O I
10.1021/acs.langmuir.7b03508
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
When a liquid bridge is formed between two nonparallel identical surfaces, it can move along the surfaces. Literature indicates that the direction of bridge movement is governed by the wettability of surfaces. When the surfaces are hydrophilic, the motion of the bridge is always toward the cusp (intersection of the plane of the two bounding surfaces). On the other hand, the movement is hitherto thought to be always pointing away from the cusp when the surfaces are hydrophobic. In this study, through experiments, numerical simulations, and analytical reasoning, we demonstrate that for hydrophobic surfaces, wettability is not the only factor determining the direction of the motion. A new geometrical parameter, i.e., confinement (cf), was defined as the ratio of the distance of the farthest contact point of the bridge to the cusp, and that of the closest contact point to the cusp. The direction of the motion depends on the amount of confinement (cf). When the distance between the surfaces is large (resulting in a small cf), the bridge tends to move toward the cusp through a pinning/depinning mechanism of contact lines. When the distance between the surfaces is small (large cf), the bridge tends to move away from the cusp. For a specific system, a maximum cf value (cfraaa) exists. A sliding behavior (i.e., simultaneous advancing on the wider side and receding on the narrower side) can also be seen when a liquid bridge is compressed such that the cf exceeds the cf.. Contact angle hysteresis (CAH) is identified as an underpinning phenomenon that together with cf fundamentally explains the movement of a trapped liquid between two hydrophobic surfaces. If there is no CAH, however, i.e., the case of ideal hydrophobic surfaces, the cf will be a constant; we show that the bridge slides toward the cusp when it is stretched, while it slides away from the cusp when it is compressed (note sliding motion is different from motion due to pinning/depinning mechanism of contact lines). As such, the displacement is only related to geometrical parameters such as the amount of compression (or stretching) and the dihedral angle between the surfaces.
引用
收藏
页码:14674 / 14683
页数:10
相关论文
共 50 条
  • [41] Characterisation and stability of hydrophobic surfaces in water
    Maccarini, M
    Himmelhaus, M
    Stoycheva, S
    Grunze, M
    APPLIED SURFACE SCIENCE, 2005, 252 (05) : 1941 - 1946
  • [42] Spreading behavior of firefighting foam solutions on typical liquid fuel surfaces
    Sheng, Youjie
    Li, Yang
    Ma, Wenzhi
    Zhang, Hanling
    JOURNAL OF SURFACTANTS AND DETERGENTS, 2022, 25 (06) : 789 - 798
  • [43] Forced dynamics of a short viscous liquid bridge
    Vincent, L.
    Duchemin, L.
    Le Dizes, S.
    JOURNAL OF FLUID MECHANICS, 2014, 761 : 220 - 240
  • [44] Restructuring of Hydrophobic Surfaces Created by Surfactant Adsorption to Mica Surfaces
    Das, Jhuma
    Eun, Changsun
    Perkin, Susan
    Berkowitz, Max L.
    LANGMUIR, 2011, 27 (19) : 11737 - 11741
  • [45] On the dynamics of a liquid bridge between a sphere and a vertically vibrated solid surface
    Vallone, A. F.
    Unac, R. O.
    Maza, D.
    Vidales, A. M.
    GRANULAR MATTER, 2023, 25 (02)
  • [46] Effect of surface roughness on the liquid bridge between two rigid spheres
    Yin, Yu
    Liu, Fengyin
    Miao, Meng
    Yuan, Zhiheng
    Tang, Yuqing
    POWDER TECHNOLOGY, 2025, 449
  • [47] Competing forces on a liquid bridge between parallel and orthogonal dissimilar fibers
    Aziz, Hossain
    Tafreshi, Hooman V.
    SOFT MATTER, 2019, 15 (35) : 6967 - 6977
  • [48] Numerical Investigation of Funicular Liquid Bridge Interactions Between Spherical Particles
    Di Renzo, Alberto
    Picarelli, Giada
    Di Maio, Francesco P.
    CHEMICAL ENGINEERING & TECHNOLOGY, 2020, 43 (05) : 830 - 837
  • [49] Liquid bridge microstereolithography
    Lee, Jeongwoo
    Lu, Yanfeng
    Kashyap, Sumanth
    Alarmdari, Asian
    Emon, Md Omar Faruk
    Choi, Jae-Won
    ADDITIVE MANUFACTURING, 2018, 21 : 76 - 83
  • [50] A mathematic model for predicting the volume of water bridge retaining between vertical fin surfaces
    Yang, Yifei
    Zhuang, Dawei
    Ding, Guoliang
    Hu, Haitao
    INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2016, 67 : 157 - 166