Department of Mechanical and Manufacturing Engineering , Miami University , Oxford , Ohio 45056 , United States.
ACS Appl Mater Interfaces. 2019 Jan 30;11(4):4607-4615. doi: 10.1021/acsami.8b18873. Epub 2019 Jan 18.
Thin non-perfluoroalkoxy superhydrophobic coatings are desirable for heat exchangers because of their lower thermal resistance and reduced environmental concerns. Coatings requirements must also include robustness and longevity and facilitate high defrosting rates in refrigeration applications to warrant their adoption and use. Methyl-functionalized silica nanosprings (SN) possess water droplet static contact angles above 160° with contact angle hysteresis values as low as 6.9° for a sub-micrometer-thick coating. The methyl functional groups render the silica surface hydrophobic, whereas the geometrical and topographical characteristics of the nanosprings make it super-hydrophobic. Results show that SN are capable of removing 95% of the frost from the surface at a lower temperature than the base aluminum substrate. The sub-micrometer SN coating also decreases the time to defrost by ≈1.5 times and can withstand more than 20 frosting-defrosting cycles in a high humidity environment akin to real working conditions for heat exchangers.
薄的非全氟烷氧基超疏水涂层因其热阻低和环境问题减少而受到换热器的青睐。涂层要求还必须包括坚固性和耐久性,并促进制冷应用中的高除霜速率,以保证其采用和使用。甲硅烷基官能化二氧化硅纳米弹簧(SN)具有静态接触角超过 160°的水滴,对于亚微米厚的涂层,接触角滞后值低至 6.9°。甲基官能团使二氧化硅表面疏水,而纳米弹簧的几何和形貌特征使其具有超疏水性。结果表明,SN 能够在比基础铝基底更低的温度下从表面去除 95%的霜。亚微米 SN 涂层还将除霜时间缩短了约 1.5 倍,并且能够在类似于换热器实际工作条件的高湿度环境中承受超过 20 次的结霜-除霜循环。