Superhydrophobic Antifrosting 7075 Aluminum Alloy Surface with Stable Cassie–Baxter State Fabricated through Direct Laser Interference Lithography and Hydrothermal Treatment
Сверхгидрофобная противообледенительная поверхность из алюминиевого сплава 7075 со стабильным состоянием Касси—Бакстера, изготовленная методом прямой лазерной интерференционной литографии и гидротермальной обработки
2023-12-18
SCID: 54.1/e6bf7bq7
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7075 aluminum alloyCassie–Baxter statedirect laser interference lithographyhydrothermal treatmentsuperhydrophobic antifrosting surface
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Abstract (AI)
Frost formation and accumulation can have catastrophic effects on a wide range of industrial activities. Hence, a dual-scale surface with a stable Cassie-Baxter state is developed to mitigate the frosting problem by utilizing direct laser interference lithography assisted with hydrothermal treatment. The high Laplace pressure tolerance under the evaporation stimulus and prolonged Cassie-Baxter state maintenance under the condensation stimulus demonstrate the stable Cassie-Baxter state. The dual-scale surface exhibits a lengthy frost-delaying time of up to 5277 s at -7 °C due to the stable Cassie-Baxter state. The self-removal of frost is achieved by promoting the mobility of frost melts driven by the released interfacial energy. In addition, the dense flocculent frost layer is observed on the single-scale micro surface, whereas the sparse pearl-shaped frost layer with many voids is obtained on the dual-scale surface. This work will aid in understanding the frosting process on various-scale superhydrophobic surfaces and in the design of antifrosting surfaces.
Key Findings
1
A dual-scale superhydrophobic 7075 aluminum alloy surface was fabricated using direct laser interference lithography followed by hydrothermal treatment.
2
Compared with single-scale microstructures producing dense flocculent frost, the dual-scale surface forms sparse pearl-shaped frost with numerous voids.
3
Frost self-removal occurs through enhanced mobility of melting frost driven by released interfacial energy.
4
The dual-scale surface delayed frost formation for up to 5277 seconds at −7 °C.
5
The engineered surface maintains a stable Cassie–Baxter state under both evaporation-induced high Laplace pressure and condensation conditions.
Research Object
dual-scale superhydrophobic 7075 aluminum alloy surface with a stable Cassie–Baxter state
Research Subject
antifrosting performance, frost nucleation and morphology, frost-delay time, and self-removal mechanisms under evaporation and condensation stimuli
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2023-12-18
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