Passive Anti-Icing and Active Electrothermal Deicing
System Based on an Ultraflexible Carbon Nanowire (CNW)/PDMS Biomimetic
Nanocomposite with a Superhydrophobic Microcolumn Surface
posted on 2020-11-19, 20:04authored byYongyang Sun, Xin Sui, Yubo Wang, Wenyan Liang, Fangxin Wang
The
icephobicity property of multifunctional surfaces has been
widely studied due to their potential application in the aerospace
field. Herein, a controllable CNW/PDMS biomimetic nanocomposite film
with a superhydrophobic surface is fabricated. The microcolumns are
etched on the surface of the biomimetic nanocomposite to provide superhydrophobicity.
Two defense strategies of biomimetic nanocomposites are proposed while
passive anti-icing and active electrothermal deicing behaviors of
the biomimetic nanocomposite are experimentally studied. It is found
that the initial nucleation time of a single water droplet is delayed
by 353.3 s on the superhydrophobic surface relative to the hydrophilic
surface. The adhesion strength increases with the increase of surface
roughness. The heating uniformity on the biomimetic nanocomposite
surface was validated by infrared thermography technology. The ice
layer is completely melted within 150 s under 40 V voltage captured
by a noncontact infrared camera. The proposed strategy was validated
by the characterization of the passive anti-icing and active electrothermal
deicing property from biomimetic nanocomposites with superhydrophobic
microstructure surfaces. Research results show that the two lines
of defense collaborative work for an icephobicity system were able
to keep biomimetic nanocomposite surfaces ice-free under test conditions.