A Superhydrophobic Anti-Icing Surface with a Honeycomb Nanopore Structure

Author:

Li Bo1,Xiang Huiying2,Dai Xu3,Zhu Tao2,Hua Xujiang2,Yuan Yuan2ORCID

Affiliation:

1. Institute of Electric Power Science of Guizhou Power Grid Co., Ltd., Guiyang 550002, China

2. College of Materials Science and Engineering, Chongqing University, Chongqing 400030, China

3. State Key Laboratory of Power Transmission Equipment & System Security and New Technology, Chongqing University, Chongqing 400044, China

Abstract

Recently, the icing disaster of transmission lines has been a serious threat to the safe operation of the power system. A superhydrophobic (SHP) anti-icing surface with a honeycomb nanopore structure was constructed using anodic oxidation technology combined with a vacuum infusion process. When the current density was 87.5 mA/cm2, the honeycomb porous surface had the best superhydrophobic performance (excellent water mobility), lowest ice-adhesion strength (0.7 kPa) and best anti-frosting performance. Compared with other types of alumina surfaces, the ice-adhesion strength of the SHP surface (87.5 mA/cm2) was only 0.2% of that of the bare surface. The frosting time of the SHP surface (87.5 mA/cm2) was 150 min, which was much slower. The former is attributed to the air cushion within the porous structure and the stress concentration, and the latter is attributed to the self-transition of the droplets and low solid–liquid heat transfer area. After 100 icing or frosting cycles, the SHP surface (87.5 mA/cm2) maintained a low ice-adhesion strength and superhydrophobic performance. This is because the anodic oxidation process forms a hard porous film, and the nano porous structure with a high aspect ratio can store modifiers to realize self-healing. The results indicate that the SHP surface with a honeycomb nanopore structure presents excellent anti-icing performance and durability.

Funder

Electric Power Research Institute of Guizhou Power Grid. Co., Ltd., China

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

Reference21 articles.

1. Analysis of transmission line icing prediction based on CNN and data mining technology;Li;Soft Comput.,2022

2. Research of Preparation, Anti-icing and Anti-pollution of Super Hydrophobic Insulation Coatings;Li;Trans. China Electrotech. Soc.,2017

3. Li, T., and Li, J. (2009, January 8–11). Analysis of icing accident in South China power grids in 2008 and it’s countermeasures. Proceedings of the CIRED 2009—20th International Conference and Exhibition on Electricity Distribution—Part 1, Prague, Czech Republic.

4. A review of surface engineering issues critical to wind turbine performance;Dalili;Renew. Sustain. Energy Rev.,2009

5. DC Ice-Melting Model for Elliptic Glaze Iced Conductor;Fan;IEEE Trans. Power Deliv.,2011

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