The wetting condition effect of the condensation process on a hybrid superhydrophobic and superhydrophilic copper surface as shown in Fig. 1a was experimentally investigated. The superhydrophilic surface (Fig. 1b) consists of micro-flowers (CuO) and nanorods (Cu(OH)2) obtained by immersing the copper substrate into alkaline solution of 2.5 M sodium hydroxide and 0.1 M ammonium persulphate, and the superhydrophobic nanostructured surface (Fig. 1c) was formed by spin coating the Cytop on the hierarchically structured CuO / Cu(OH)2 surface. Experimental results show that the film condensation started on the superhydrophilic region while the dropwise condensation of tiny droplets with an average contact angle of 160° were formed on the superhydrophobic region. Because the film condensation was confined within the superhydrophilic region of 1 mm x 1 mm, the contact angle of this droplet became larger and larger. When a tiny droplet developed on the superhydrophobic area joins with the big droplet formed on the superhydrophilic surface (square region), the coalesced droplet obtains additional energy and jumps off from the condensing surface.
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Droplets Jumping from a Hybrid Superhydrophilic and Superhydrophobic Surface
Hai Wang,
Hai Wang
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
hwtwb@mail.missouri.edu
hwtwb@mail.missouri.edu
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Quang Nguyen,
Quang Nguyen
Department of Electrical and computer engineering, University of Missouri, Columbia, MO, USA
qtn5zf@mail.missouri.edu
qtn5zf@mail.missouri.edu
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Jae W. Kwon,
Jae W. Kwon
Department of Electrical and computer engineering, University of Missouri, Columbia, MO, USA
kwonj@missouri.edu
kwonj@missouri.edu
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Jing Wang,
Jing Wang
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
WaJing@missouri.edu
WaJing@missouri.edu
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Hongbin Ma
Hongbin Ma
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
mah@missouri.edu
mah@missouri.edu
Search for other works by this author on:
Hai Wang
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
hwtwb@mail.missouri.edu
hwtwb@mail.missouri.edu
Quang Nguyen
Department of Electrical and computer engineering, University of Missouri, Columbia, MO, USA
qtn5zf@mail.missouri.edu
qtn5zf@mail.missouri.edu
Jae W. Kwon
Department of Electrical and computer engineering, University of Missouri, Columbia, MO, USA
kwonj@missouri.edu
kwonj@missouri.edu
Jing Wang
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
WaJing@missouri.edu
WaJing@missouri.edu
Hongbin Ma
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO, USA
mah@missouri.edu
mah@missouri.edu
1Corresponding author.
J. Heat Transfer. Feb 2017, 139(2): 020908
Published Online: January 6, 2017
Article history
Received:
November 4, 2016
Revised:
December 6, 2016
Citation
Wang, H., Nguyen, Q., Kwon, J. W., Wang, J., and Ma, H. (January 6, 2017). "Droplets Jumping from a Hybrid Superhydrophilic and Superhydrophobic Surface." ASME. J. Heat Transfer. February 2017; 139(2): 020908. https://doi.org/10.1115/1.4035578
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