Extraordinary Shifts of the Leidenfrost Temperature from Multiscale Micro/Nanostructured Surfaces

被引:165
作者
Kruse, Corey [1 ]
Anderson, Troy [1 ]
Wilson, Chris [1 ]
Zuhlke, Craig [1 ]
Alexander, Dennis [1 ]
Gogos, George [1 ]
Ndao, Sidy [1 ]
机构
[1] Univ Nebraska, Lincoln, NE 68583 USA
关键词
FEMTOSECOND; EVAPORATION; POINT; WETTABILITY; DROPLET; GROWTH;
D O I
10.1021/la401936w
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In the present work, the effects of surface chemistry and micro/nanostructuring on the Leidenfrost temperature are experimentally investigated. The functional surfaces were fabricated on a 304 stainless steel surface via femtosecond laser surface processing (FLSP). The droplet lifetime experimental method was employed to determine the Leidenfrost temperature for both machine-polished and textured surfaces. A precision dropper was used to control the droplet size to 4.2 mu L and surface temperatures were measured by means of an embedded thermocouple. Extraordinary shifts in the Leidenfrost temperatures, as high as 175 degrees C relative to the polished surface, were observed with the laser-processed surfaces. These extraordinary shifts were attributed to nanoporosity, reduction in contact angle, intermittent liquid/solid contacts, and capillary wicking actions resulting from the presence of self-assembled nanoparticles formed on the surfaces. In addition to the shift in the Leidenfrost temperature, significant enhancement of the heat transfer in the film boiling regime was also observed for the laser-processed surfaces; water droplet evaporation times were reduced by up to 33% for a surface temperature of 500 degrees C.
引用
收藏
页码:9798 / 9806
页数:9
相关论文
共 48 条
[1]   LEIDENFROST BOILING OF METHANOL DROPLETS ON HOT POROUS CERAMIC SURFACES [J].
AVEDISIAN, CT ;
KOPLIK, J .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1987, 30 (02) :379-393
[2]   Superhydrophobic surfaces prepared by microstructuring of silicon using a femtosecond laser [J].
Baldacchini, Tommaso ;
Carey, James E. ;
Zhou, Ming ;
Mazur, Eric .
LANGMUIR, 2006, 22 (11) :4917-4919
[3]  
BAUMEISTER KJ, 1970, AUGMENTATION CONVECT, P91
[4]   The Leidenfrost point: Experimental study and assessment of existing models [J].
Bernardin, JD ;
Mudawar, I .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1999, 121 (04) :894-903
[5]   Leidenfrost drops [J].
Biance, AL ;
Clanet, C ;
Quéré, D .
PHYSICS OF FLUIDS, 2003, 15 (06) :1632-1637
[6]   Modifications of roughness and wettability properties of metals induced by femtosecond laser treatment [J].
Bizi-Bandoki, P. ;
Benayoun, S. ;
Valette, S. ;
Beaugiraud, B. ;
Audouard, E. .
APPLIED SURFACE SCIENCE, 2011, 257 (12) :5213-5218
[7]   Geometry of the Vapor Layer Under a Leidenfrost Drop [J].
Burton, J. C. ;
Sharpe, A. L. ;
van der Veen, R. C. A. ;
Franco, A. ;
Nagel, S. R. .
PHYSICAL REVIEW LETTERS, 2012, 109 (07)
[8]  
Carey VP, 2020, Liquid-vapor Phase-change Phenomena: An Introduction to the Thermophysics of Vaporization and Condensation Processes in Heat Transfer Equipment. Series in chemical and mechanical engineering
[9]   Comparison of structure and properties of femtosecond and nanosecond laser-structured silicon [J].
Crouch, CH ;
Carey, JE ;
Warrender, JM ;
Aziz, MJ ;
Mazur, E ;
Génin, FY .
APPLIED PHYSICS LETTERS, 2004, 84 (11) :1850-1852
[10]   Leidenfrost Point Reduction on Micropatterned Metallic Surfaces [J].
del Cerro, Daniel Arnaldo ;
Marin, Alvaro G. ;
Romer, Gertwillem R. B. E. ;
Pathiraj, B. ;
Lohse, Detlef ;
in't Veld, Albertus J. Huis .
LANGMUIR, 2012, 28 (42) :15106-15110