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Hybrid surface combines hydrophobic nanowires and hydrophilic channels to prevent condensation flooding

Smart surface design prevents condensation flooding
SEM images and schematic of the 3D hybrid surface showing anti-flooding characteristics by combining filmwise and dropwise condensation. Credit: National Taiwan University

Condensation is critical for applications like power generation, water harvesting, and cooling systems. However, traditional surfaces suffer from a drop in performance under high subcooling, when the surface temperature is much lower than the surrounding vapor. This leads to water flooding and reduced heat transfer.

To tackle this long-standing challenge, researchers at National Taiwan University and National Chung Hsing University have developed a novel three-dimensional (3D) hybrid surface that significantly enhances performance and avoids flooding, even at high subcooling. The paper is in Small Structures.

The new surface integrates short hydrophobic nanowires and hydrophilic microchannels in a structured pattern. This combination helps guide water droplets efficiently off the surface, preventing the accumulation of water that typically hampers heat transfer.

Unlike previous designs, this surface sustains both dropwise condensation for high heat transfer and controlled filmwise condensation in confined regions to guide drainage, enabling stable performance across a wide range of temperatures.

Experimental results demonstrated that the surface with the narrowest microchannels (named N100) achieved the best performance. It maintained a stable and high heat transfer coefficient of 38.3 kW/m2路K at a subcooling of 16 K鈥216% higher than a conventional hydrophilic surface.

On the N100 surface, large water droplets were removed efficiently through sliding motion along the microchannels, as the confined film helped reduce adhesion and promoted droplet departure.

This innovation offers a robust solution for improving condensation in practical applications like , air conditioners, and desalination units. Its stability and performance across temperature ranges represent a significant step forward in materials.

"This research shows how smart surface engineering can overcome the limitations of current materials and improve in real-world systems," said Prof. Ming-Chang Lu.

More information: Ching鈥怶en Lo et al, Sustained Condensation Efficiency on 3D Hybrid Surfaces, Small Structures (2024).

Citation: Hybrid surface combines hydrophobic nanowires and hydrophilic channels to prevent condensation flooding (2025, April 21) retrieved 28 April 2025 from /news/2025-04-hybrid-surface-combines-hydrophobic-nanowires.html
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