首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Continuous Droplet Removal upon Dropwise Condensation of Humid Air on a Hydrophobic Micropatterned Surface
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Continuous Droplet Removal upon Dropwise Condensation of Humid Air on a Hydrophobic Micropatterned Surface

机译:疏水微图案化表面上的湿空气逐滴冷凝后连续去除液滴

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摘要

Combination of two physical phenomena, capillary pressure gradient and wettability gradient, allows a simple two-step fabrication process that yields a reliable hydrophobic self-cleaning condenser surface. The surface is fabricated with specific microscopic topography and further treatment with a chemically inert low-surfaceenergy material. This process does not require growth of nanofeatures (nanotubes) or hydrophilic-hydrophobic patterning of the surface. Trapezoidal geometry of the microfeatures facilitates droplet transfer from the Wenzel to the Cassie state and reduces droplet critical diameter. The geometry of the micropatterns enhances local coalescence and directional movement for droplets with diameter much smaller than the radial length of the micropatterns. The hydrophobic self-cleaning micropatterned condenser surface prevents liquid film formation and promotes continuous dropwise condensation cycle. Upon dropwise condensation, droplets follow a designed wettability gradient created with micropatterns from the most hydrophobic to the least hydrophobic end of the surface. The surface has higher condensation efficiency, due to its directional self-cleaning property, than a plain hydrophobic surface. We explain the self-actuated droplet collection mechanism on the condenser surface and demonstrate experimentally the creation of an effective wettability gradient over a 6 mm radial distance. In spite of its fabrication simplicity, the fabricated surface demonstrates self-cleaning property, enhanced condensation performance, and reliability over time. Our work enables creation of a hydrophobic condenser surface with the directional self-cleaning property that can be used for collection of biological (chemical, environmental) aerosol samples or for condensation enhancement.
机译:毛细压力梯度和润湿性梯度这两种物理现象的结合,允许简单的两步制造过程,从而产生可靠的疏水性自清洁冷凝器表面。该表面具有特定的微观形貌,并使用化学惰性的低表面能材料进行进一步处理。此过程不需要纳米特征(纳米管)的生长或表面的亲水疏水图样。微特征的梯形几何形状有助于液滴从Wenzel转移到Cassie状态并减小液滴的临界直径。微图案的几何形状增强了直径远小于微图案的径向长度的液滴的局部聚结和定向运动。疏水性自清洁的微图案冷凝器表面可防止形成液膜并促进连续的逐滴冷凝循环。在逐滴冷凝时,液滴遵循设计的可润湿性梯度,该梯度由微图案形成,从表面的疏水性最高到疏水性最低。由于其定向自清洁特性,该表面比普通的疏水表面具有更高的冷凝效率。我们解释了冷凝器表面上的自驱动液滴收集机制,并通过实验证明了在6 mm径向距离上创建有效的可湿性梯度。尽管其制造简单,但所制造的表面仍具有自清洁性能,增强的凝结性能和经时可靠性。我们的工作使疏水性冷凝器表面具有方向性的自清洁特性,可用于收集生物(化学,环境)气溶胶样品或增强冷凝作用。

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