结冰
材料科学
砂纸
复合材料
雪
纳米技术
气象学
物理
作者
Sensen Xuan,Huan Yin,Guoqiang Li,Guoqiang Li,Zuxing Zhang,Yue Jiao,Zhiwen Liao,Jianhui Li,Senyun Liu,Yuan Wang,Chengning Tang,Weiming Wu,Guilin Li,Guilin Li,Kai Yin
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-10-16
卷期号:17 (21): 21749-21760
被引量:193
标识
DOI:10.1021/acsnano.3c07385
摘要
L. endowed by its micronano structure and low surface energy, a fresh structure was prepared by combining femtosecond laser processing technology and a boiling water treatment method. The prepared icephobic surface aluminum alloy (ISAl) mainly consists of a periodic microcrater array, nonuniform microclusters, and irregular nanosheets. This three-scale structure greatly promotes the stability of the Cassie-Baxter state. The critical Laplace pressure of ISAl is up to 1437 Pa, and the apparent water contact angle (CA) is higher than 150° at 0 °C. Those two factors contribute to its excellent anti-icing and deicing performances. The results show that the static icing delay time reaches 2577 s, and the ice adhesion strength is only 1.60 kPa. Furthermore, the anti-icing and deicing abilities of the proposed ISAl were examined under the environment of low temperature and high relative humidity to demonstrate its effectiveness. The dynamic anti-icing time of ISAl in extreme environments is up to 5 h, and ice can quickly fall with a speed of 34 r/min when it is in a horizontal rotational motion. Finally, ISAl has excellent reusability and mechanical durability, with the ice adhesion strength still being less than 6 kPa and the CA greater than 150° after 15 cycles of icing-deicing tests. The proposed structure would offer a promising strategy for the efficient anti-icing and deicing of wind turbine blades.
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