Dynamic contact angle measurements on superhydrophobic surfaces

被引:82
作者
Kim, Jeong-Hyun [1 ]
Kavehpour, H. Pirouz [2 ]
Rothstein, Jonathan P. [1 ]
机构
[1] Univ Massachusetts, Dept Mech & Ind Engn, Amherst, MA 01003 USA
[2] Univ Calif Los Angeles, Dept Mech & Aerosp Engn, Los Angeles, CA 90095 USA
基金
美国国家科学基金会;
关键词
ULTRAHYDROPHOBIC SURFACES; DRAG REDUCTION; SOLID-SURFACE; LIQUIDS; LINES; KINETICS; DROPS; SPEED; FLOW; TRANSITIONS;
D O I
10.1063/1.4915112
中图分类号
O3 [力学];
学科分类号
070301 [无机化学];
摘要
In this paper, the dynamic advancing and receding contact angles of a series of aqueous solutions were measured on a number of hydrophobic and superhydrophobic surfaces using a modified Wilhelmy plate technique. Superhydrophobic surfaces are hydrophobic surfaces with micron or nanometer sized surface roughness. These surfaces have very large static advancing contact angles and little static contact angle hysteresis. In this study, the dynamic advancing and dynamic receding contact angles on superhydrophobic surfaces were measured as a function of plate velocity and capillary number. The dynamic contact angles measured on a smooth hydrophobic Teflon surface were found to obey the scaling with capillary number predicted by the Cox-Voinov-Tanner law, theta(3)(D) proportional to Ca. The response of the dynamic contact angle on the superhydrophobic surfaces, however, did not follow the same scaling law. The advancing contact angle was found to remain constant at theta(A) = 160 degrees, independent of capillary number. The dynamic receding contact angle measurements on superhydrophobic surfaces were found to decrease with increasing capillary number; however, the presence of slip on the superhydrophobic surface was found to result in a shift in the onset of dynamic contact angle variation to larger capillary numbers. In addition, a much weaker dependence of the dynamic contact angle on capillary number was observed for some of the superhydrophobic surfaces tested. (C) 2015 AIP Publishing LLC.
引用
收藏
页数:11
相关论文
共 47 条
[1]
Purity of the sacred lotus, or escape from contamination in biological surfaces [J].
Barthlott, W ;
Neinhuis, C .
PLANTA, 1997, 202 (01) :1-8
[2]
Berg JC., 1993, Wettability
[3]
KINETICS OF LIQUID/LIQUID DISPLACEMENT [J].
BLAKE, TD ;
HAYNES, JM .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1969, 30 (03) :421-&
[4]
Dynamic wetting by liquids of different viscosity [J].
Blake, TD ;
Shikhmurzaev, YD .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2002, 253 (01) :196-202
[5]
MAXIMUM SPEED OF WETTING [J].
BLAKE, TD ;
RUSCHAK, KJ .
NATURE, 1979, 282 (5738) :489-491
[6]
The physics of moving wetting lines [J].
Blake, Terence D. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2006, 299 (01) :1-13
[7]
BRACKE M, 1989, PROG COLL POL SCI S, V79, P142
[8]
ENTRAINMENT OF AIR INTO LIQUIDS BY A HIGH-SPEED CONTINUOUS SOLID-SURFACE [J].
BURLEY, R ;
JOLLY, RPS .
CHEMICAL ENGINEERING SCIENCE, 1984, 39 (09) :1357-1372
[10]
Drag reduction in turbulent flows over superhydrophobic surfaces [J].
Daniello, Robert J. ;
Waterhouse, Nicholas E. ;
Rothstein, Jonathan P. .
PHYSICS OF FLUIDS, 2009, 21 (08)