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COST-EFFECTIVE FABRICATION OF WETTABILITY GRADIENT COPPER SURFACE BY SCREEN PRINTING AND ITS APPLICATION TO CONDENSATION HEAT TRANSFER
Author(s) -
Tzong-Shyng Leu,
HUNG-MING HUANG,
Ding-Jun Huang
Publication year - 2016
Publication title -
international journal of modern physics conference series
Language(s) - English
Resource type - Journals
ISSN - 2010-1945
DOI - 10.1142/s2010194516601812
Subject(s) - superhydrophilicity , wetting , materials science , coalescence (physics) , condensation , fabrication , copper , heat transfer , nanotechnology , nucleation , temperature gradient , tube (container) , composite material , chemical engineering , metallurgy , mechanics , chemistry , thermodynamics , engineering , medicine , physics , alternative medicine , pathology , quantum mechanics , astrobiology , organic chemistry
In this paper, wettability gradient pattern is applied to condensation heat transfer on a copper tube surface. For this application, the vital issue is how to fabricate gradient patterns on a curve tube surface to accelerate the droplet collection efficiently. For this purpose, novel fabrication processes are developed to form wettability gradient patterns on a curve copper tube surface by using roller screen printing surface modification techniques. The roller screen printing surface modification techniques can easily realize wettability gradient surfaces with superhydrophobicity and superhydrophilicity on a copper tube surface. Experimental results show the droplet nucleation sites, movement and coalescence toward the collection areas can be effectively controlled which can assist in removing the condensation water from the surface. The effectiveness of droplet collection is appropriate for being applied to condensation heat transfer in the foreseeable future.

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