Thermal Ice Melting Performance of Femtosecond Laser Metal Micro-Nano-Structured Surface

IF 1.4 4区 化学 Q4 CHEMISTRY, PHYSICAL
Ziyuan Liu, Qing Ma, Tingsong Zhang, Yujia Dai
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引用次数: 0

Abstract

Improving thermal ice melting efficiency is very important in the practical application of anti-icing surfaces. This work investigated the thermal ice melting performance of micro-nano-structured surfaces fabricated by femtosecond laser. To the best of our knowledge, we found that the micro-nano-structured surfaces significantly improve the ice melting time for the first time. The shortest melting time was on the porous micro-nano-structured surface, about one third of the original surface. Moreover, it was proven that the accelerated ice melting surface had good durability. The research in this paper showed that the micro-nano-structured surfaces are very suitable for the surface that needs to be heated to melt ice, providing essential guidance for the design of the anti-icing surface.

Abstract Image

飞秒激光金属微纳结构表面的热融冰性能
摘要提高热融冰效率对于防冰表面的实际应用非常重要。这项工作研究了利用飞秒激光制造的微纳米结构表面的热融冰性能。据我们所知,我们首次发现微纳结构表面显著提高了融冰时间。多孔微纳结构表面的融冰时间最短,约为原表面的三分之一。此外,还证明了加速融冰表面具有良好的耐久性。本文的研究表明,微纳结构表面非常适用于需要加热融冰的表面,为防冰表面的设计提供了重要指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Colloid Journal
Colloid Journal 化学-物理化学
CiteScore
2.20
自引率
18.20%
发文量
36
审稿时长
6-12 weeks
期刊介绍: Colloid Journal (Kolloidnyi Zhurnal) is the only journal in Russia that publishes the results of research in the area of chemical science dealing with the disperse state of matter and surface phenomena in disperse systems. The journal covers experimental and theoretical works on a great variety of colloid and surface phenomena: the structure and properties of interfaces; adsorption phenomena and structure of adsorption layers of surfactants; capillary phenomena; wetting films; wetting and spreading; and detergency. The formation of colloid systems, their molecular-kinetic and optical properties, surface forces, interaction of colloidal particles, stabilization, and criteria of stability loss of different disperse systems (lyosols and aerosols, suspensions, emulsions, foams, and micellar systems) are also topics of the journal. Colloid Journal also includes the phenomena of electro- and diffusiophoresis, electro- and thermoosmosis, and capillary and reverse osmosis, i.e., phenomena dealing with the existence of diffusion layers of molecules and ions in the vicinity of the interface.
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