Supercooled Water Drops Impacting Superhydrophobic Textures

被引:165
|
作者
Maitra, Tanmoy [1 ]
Antonini, Carlo [1 ]
Tiwari, Manish K. [1 ]
Mularczyk, Adrian [1 ]
Imeri, Zulkufli [1 ]
Schoch, Philippe [1 ]
Poulikakos, Dimos [1 ]
机构
[1] ETH, Mech & Proc Engn Dept, Lab Thermodynam Emerging Technol, CH-8092 Zurich, Switzerland
基金
瑞士国家科学基金会;
关键词
SURFACE TEXTURES; CONTACT TIME; TRANSITIONS; VISCOSITY; MECHANISM; DROPLETS;
D O I
10.1021/la502675a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Understanding the interaction of supercooled metastable water with superhydrophobic surface textures is of fundamental significance for unraveling the mechanisms of icing as well as of practical importance for the rational development of surface treatment strategies to prevent icing. We investigate the problem of supercooled water drops impacting superhydrophobic textures for drop supercooling down to -17 degrees C and find that increased viscous effects significantly influence all stages of impact dynamics, in particular, the impact and meniscus impalement behavior, with severe implications to water retention by the textures (sticky versus rebounding drop) and possible icing. Viscous effects in water supercooling conditions cause a reduction of drop maximum spreading (similar to 25% at an impact speed of 3 m/s for a millimetric drop) and can significantly decrease the drop recoil speed when the meniscus partially penetrates into the texture, leading to an increase of the contact time up to a factor of 2 in supercooling conditions compared to room temperature. We also show that meniscus penetration upon drop impact occurs with full penetration at the center, instead of ring shape, common to room temperature drop impact. To this end, we describe an unobserved mechanism for superhydrophobicity breakdown: unlike for room temperature drops, where transition from bouncing to sticky (impaled) behavior occurs sharply at the condition of full texture penetration, with a bubble captured at the point of impact, under supercooled conditions, the full penetration velocity threshold is increased markedly (increasing by similar to 25%, from 2.8 to 3.5 m/s) and no bubble is entrapped. However, even though only partial texture penetration takes place, failure to completely dewet because of viscous effects can still prohibit complete supercooled drop rebound.
引用
收藏
页码:10855 / 10861
页数:7
相关论文
共 50 条
  • [21] FREEZING OF SUPERCOOLED WATER DROPS IN IONIZED AIR
    DUBROVICH, NA
    COLLOID JOURNAL OF THE USSR, 1988, 50 (05): : 851 - 855
  • [22] SIMPLEST TYPES OF CRYSTALLIZATION OF SUPERCOOLED WATER DROPS
    GLIKI, NV
    GROMOVA, TN
    ACTA CRYSTALLOGRAPHICA, 1966, S 21 : A258 - &
  • [23] Predictive Model of Supercooled Water Droplet Pinning/Repulsion Impacting a Superhydrophobic Surface: The Role of the Gas-Liquid Interface Temperature
    Mohammadi, Morteza
    Tembely, Moussa
    Dolatabadi, Ali
    LANGMUIR, 2017, 33 (08) : 1816 - 1825
  • [24] Internal rupture and rapid bouncing of impacting drops induced by submillimeter-scale textures
    Zhang, Rui
    Zhang, Xiwen
    Hao, Pengfei
    He, Feng
    PHYSICAL REVIEW E, 2017, 95 (06)
  • [25] FREEZING OF DROPS OF A SUPERCOOLED WATER MIST IN AN ACOUSTIC FIELD
    BAZILEVICH, VV
    TVERSKOI, NP
    SOVIET PHYSICS-TECHNICAL PHYSICS, 1957, 2 (08): : 1696 - 1699
  • [26] Time evolutions of water drops impacting on a rotating disk
    Li, Jingyin
    Yuan, Xiaofang
    Han, Qiang
    PROGRESS IN POWER AND ELECTRICAL ENGINEERING, PTS 1 AND 2, 2012, 354-355 : 609 - 614
  • [27] Role of liquid viscosity and of air entrapped on the splashing of drops impacting over superhydrophobic substrates
    Garcia-Geijo, Paula
    Riboux, Guillaume
    Manuel Gordillo, Jose
    PHYSICAL REVIEW FLUIDS, 2022, 7 (09)
  • [28] ACOUSTIC EMISSION OF WATER DROPS IMPACTING ON A HEATED SURFACE
    Bertola, Volfango
    ATOMIZATION AND SPRAYS, 2024, 34 (09) : 1 - 11
  • [29] Rebound characteristics of a water droplet impacting on a superhydrophobic cone
    Zhang, Shiqi
    Du, Jiayu
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2024, 697
  • [30] Simulating the Freezing of Supercooled Water Droplets Impacting a Cooled Substrate
    Blake, Joshua
    Thompson, David
    Raps, Dominik
    Strobl, Tobias
    AIAA JOURNAL, 2015, 53 (07) : 1725 - 1739