Materials Sciences and Applications

Volume 4, Issue 6 (June 2013)

ISSN Print: 2153-117X   ISSN Online: 2153-1188

Google-based Impact Factor: 0.97  Citations  

Design and Development of Anti-Icing Aluminum Surface

HTML  XML Download Download as PDF (Size: 602KB)  PP. 347-356  
DOI: 10.4236/msa.2013.46045    5,559 Downloads   8,749 Views  Citations

ABSTRACT

An anti-icing surface has been designed and prepared with an aluminum panel by creating an artificial lotus leaf which is highly hydrophobic. The hydrophobicity of a solid surface can be generated by decreasing its surface tension and increasing the roughness of the surface. On a highly hydrophobic surface, water has a high contact angle and it can easily rolls off, carrying surface dirt and debris with it. Super-cooled water or freezing rain can also run off this highly hydrophobic surface instead of forming ice on the surface, due to the reduction of the liquid-solid adhesion. This property can also help a surface to get rid of the ice after the water becomes frozen. In this study, a Cassie-Baxter rough surface was modeled, and an aluminum panel was physically and chemically modified based on the modeled structure. Good agreement was found between predicted values and experimental results for the contact and roll-off angles of water. Most importantly, by creating this highly hydrophobic aluminum rough surface, the anti-icing and de-icing properties of the modified surface were drastically improved compared to the control aluminum surface, and the cost will be reduced.

Share and Cite:

Y. Wang, D. Orol, J. Owens, K. Simpson and H. Lee, "Design and Development of Anti-Icing Aluminum Surface," Materials Sciences and Applications, Vol. 4 No. 6, 2013, pp. 347-356. doi: 10.4236/msa.2013.46045.

Cited by

[1] The role of the fiber/bead hierarchical microstructure on the properties of pvdf coatings deposited by electrospinning
2021
[2] Icephobic and Anticorrosion Coatings Deposited by Electrospinning on Aluminum Alloys for Aerospace Applications
Polymers, 2021
[3] Anticorrosion Coatings Deposited by Electrospinning on Aluminum Alloys for Aerospace Applications. Polymers 2021, 13, 4164
2021
[4] Tuning Surface Wettability for Effective Oil-Water Separation, Manipulation of Ferrofluid Droplets and Blood Contacting Medical Devices
2020
[5] Superhydrophobic coatings on iodine doped substrate with photothermal deicing and passive anti-icing properties
2020
[6] Implementing Micropatterned Surface for Drag Reduction in UAV
International Journal of Recent Technology and Engineering, 2019
[7] Multi-walled carbon nanotubes reinforced interpenetrating polymer network with ultrafast self-healing and anti-icing attributes
2019
[8] Molecular Dynamics (MD) Simulation of Zwitterion-Functionalized PMMA with Hydrophilic and Antifouling Surface Characteristics
2019
[9] Development of a Mode I test rig for quantitative measurements of ice adhesion using tensile stress
2019
[10] Molecular dynamics simulation of freezing process of water droplets impinging on cold surface
2018
[11] Unprecedented Influence of Carbon Dot@TiO2 Nanohybrid on Multifaceted Attributes of Waterborne Hyperbranched Polyester Nanocomposite
ACS Omega, 2018
[12] Composite coatings including solid lubricants designed for aviation
Composites Theory and Practice, 2018
[13] 水滴撞击结冰过程的分子动力学模拟
2018
[14] СОЗДАНИЕ И ИССЛЕДОВАНИЕ МИКРО-И НАНОСТРУКТУРИРОВАННЫХ СВЕРХГИДРОФОБНЫХ И АНТИОБЛЕДЕНИТЕЛЬНЫХ ПОВЕРХНОСТЕЙ
2018
[15] Fabrication and Study of Micro-and Nanostructured Superhydrophobic and Anti-Icing Surfaces
Nanotechnologies in Russia, 2017
[16] Effect of graphene oxide and fluorinated polymeric chains incorporated in a multilayered sol-gel nanocoating for the design of corrosion resistant and hydrophobic …
Applied Surface Science, 2017
[17] Effect of graphene oxide and fluorinated polymeric chains incorporated in a multilayered sol-gel nanocoating for the design of corrosion resistant and hydrophobic …
Applied Surface Science, 2017
[18] 皮秒激光制备铝基超疏水表面
激光与光电子学进展, 2016
[19] Experimental investigation on the alternate coating method for aircraft anti-icing applications
2016
[20] Fabrication and Characterization of Superhydrophobic Surfaces on Aluminum Alloy Substrates
Applied Surface Science, 2014

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.