论文标题

自我调节表面以进行有效的液体收集

Self-regulating surfaces for efficient liquid collection

论文作者

Machado, Christian, Yao, Yuehan, Feldman, Emma, Aizenberg, Joanna, Park, Kyoo-Chul Kenneth

论文摘要

为了获得有效的液体收集,表面必须通过传出的液体传输来调节传入的液体积累。通常,这可以通过使具有非润湿特征的表面功能化来实现。然而,可以有效地使用非润湿表面的基本实用限制。相反,我们利用胶片润湿来通过固体表面曲率引起的拉普拉斯压力梯度来实现液体调节。然后引入影响该毛细血管流的关键参数,即表面张力和密度(如表面张力和密度)等固体特性,例如尺度,曲率和液体性能。然后,液体调节机制然后可以用于冷凝和气溶胶过程中,以产生增强的流量,而创建此毛细血管流量本身所需的固体几何形状能够影响和增强液体的产生。最终,可以对每个唯一应用程序定制表面设计框架,以优化HVAC,工业蒸汽产生,化学沉积和大气水收集的过程。

To achieve efficient liquid collection, a surface must regulate incoming liquid accumulation with outgoing liquid transport. Often, this can be proposed to be achieved by functionalizing surfaces with non-wetting characteristics. Yet, there remain fundamental, practical limits to which non-wetting surfaces can effectively be employed. We instead utilize filmwise wetting to achieve liquid regulation via a Laplace pressure gradient induced by solid surface curvature. The key parameters affecting this capillary flow are then introduced, namely solid properties like scale and curvature and liquid properties like surface tension and density. The liquid regulation mechanism can then be employed in condensation and aerosol processes to generate enhanced flow, while the solid geometry needed to create this capillary flow itself is capable of affecting and enhancing liquid generation. Ultimately, the surface design framework can be customized to each unique application to optimize processes in HVAC, industrial steam generation, chemical depositions, and atmospheric water harvesting.

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