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Depletion of Lubricant from Nanostructured Oil-Infused Surfaces by Pendant Condensate Droplets

机译:悬浮液体液滴从纳米结构油注入表面耗尽润滑剂

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Due to recent advances in nanofabrication, phase-change condensation heat transfer has seen a renaissance. Compared to conventional heat transfer surfaces, nanostructured surfaces impregnated with chemically matched lubrication films (hereinafter referred to as "nanostructured lubricated surfaces") have been demonstrated to improve vapor-side phase-change condensation heat transfer by facilitating droplet nucleation, growth, and departure. While the presence of nanoscale roughness improves performance longevity by stabilizing the lubrication film via capillary forces, such enhancement is short-lived due to the eventual loss of lubrication oil by the departing droplets. The objective of this study is to characterize oil depletion caused by pendant droplets during condensation. For our study, we nanostructured, chemically functionalized, and lubricated horizontal copper tubes that are widely used in shell-and-tube heat exchangers in power plants and process industries. Using high-speed fluorescence imaging and thermogravimetric analysis, we show that shedding droplets exert a shear force on the oil in the wetting ridge at the water-oil interface. The viscous shear draws the lubrication film from the nanostructured surface onto the upper portion of the droplet and forms a ring-like oil skirt. Through detailed theoretical analysis, we show that the thickness of this oil skirt scales with the classical Landau-Levich-Derjaguin (LLD) theory for dipcoating. Our results reveal that droplets falling from horizontal tubes break unequally and leave behind small satellite droplets that retain the bulk of the oil in the wetting ridge. This observation is in stark contrast with the earlier description of droplets shedding from tilted flat plates where the entire oil-filled wetting ridge is demonstrated to leave the surface upon droplet departure. By selecting lubrication oils of varying viscosity and spreading coefficient, we provide evidence that the contribution of the wrapping layer to the rate of oil depletion is insignificant. Furthermore, we show that due to the nanoscale features on the tubes, nearly half of the lubrication film remains on the surface after 10 h of continuous steam condensation at ambient pressure, 23 degrees C, and 60% relative humidity, a 2-3-fold improvement over previous results.The insights gained from this work will provide guidelines for the rational design of long-lasting nanostructured lubricated surfaces for phase-change condensation.
机译:由于纳米制备近期进步,相变凝结热传递已经看过文艺复兴。与传统的传热表面相比,已经证明浸渍有化学匹配的润滑膜的纳米结构表面(以下称为“纳米结构润滑表面”),以通过促进液滴成核,生长和脱离来改善气相相变凝结热传递。虽然纳米级粗糙度的存在通过毛细管力稳定润滑膜来提高性能寿命,但由于偏离液滴的最终润滑油丧失,这种增强是短暂的。本研究的目的是表征在冷凝期间由吊坠液滴引起的油耗尽。对于我们的研究,我们纳米结构化,化学官能化和润滑的水平铜管,广泛应用于发电厂和工艺行业的壳管热交换器。使用高速荧光成像和热重分析,我们表明脱落液滴在水 - 油界面处施加湿脊的油上施加剪切力。粘性剪切将润滑膜从纳米结构表面绘制到液滴的上部并形成环状的油裙。通过详细的理论分析,我们表明,这种油裙的厚度与典型的Landau-Levich-Derjaguin(LLD)理论进行百货划分。我们的结果表明,从水平管掉下的液滴不均匀,并留下小型卫星液滴,以保留润湿脊的大部分油。该观察结果与液滴从倾斜的平板上的液滴描述呈现出与倾斜的扁平板的描述形成鲜明对比。证明整个充油的润湿脊的液体覆盖脊。通过选择不同粘度和扩散系数的润滑油,我们提供了证据表明包装层与油耗尽率的贡献是微不足道的。此外,我们表明,由于管上的纳米级特征,在环境压力下连续蒸汽冷凝的10小时后,近一半的润滑膜在表面上保持在表面压力,23℃和60%相对湿度,2-3-对先前结果的折叠改善。从这项工作中获得的见解将为相变凝结的长持久纳米结构润滑表面的合理设计提供指导。

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