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Dropwise Condensation of Low Surface Tension Fluids on Omniphobic Surfaces

机译:几何表面上低表面张力流体的逐滴凝结

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摘要

Compared to the significant body of work devoted to surface engineering for promoting dropwise condensation heat transfer of steam, much less attention has been dedicated to fluids with lower interfacial tension. A vast array of low-surface tension fluids such as hydrocarbons, cryogens, and fluorinated refrigerants are used in a number of industrial applications, and the development of passive means for increasing their condensation heat transfer coefficients has potential for significant efficiency enhancements. Here we investigate condensation behavior of a variety of liquids with surface tensions in the range of 12 to 28 mN/m on three types of omniphobic surfaces: smooth oleophobic, re-entrant superomniphobic, and lubricant-impregnated surfaces. We demonstrate that although smooth oleophobic and lubricant-impregnated surfaces can promote dropwise condensation of the majority of these fluids, re-entrant omniphobic surfaces became flooded and reverted to filmwise condensation. We also demonstrate that on the lubricant-impregnated surfaces, the choice of lubricant and underlying surface texture play a crucial role in stabilizing the lubricant and reducing pinning of the condensate. With properly engineered surfaces to promote dropwise condensation of low-surface tension fluids, we demonstrate a four to eight-fold improvement in the heat transfer coefficient.
机译:与致力于表面工程以促进蒸汽的逐滴冷凝传热的大量工作相比,对界面张力较低的流体的关注度大大降低。大量的低表面张力流体,例如碳氢化合物,冷冻剂和氟化制冷剂,被用于许多工业应用中,并且开发用于增加其冷凝传热系数的无源装置具有显着提高效率的潜力。在这里,我们研究各种液体在三种类型的全憎性表面上的表面张力在12至28 / mN / m范围内的冷凝行为:光滑的疏油表面,凹入的超憎水表面和浸有润滑剂的表面。我们证明,尽管光滑的疏油表面和浸有润滑剂的表面可以促进大多数这些流体的逐滴凝结,但凹入的疏油性表面却被淹没并恢复成膜状凝结。我们还证明,在浸有润滑剂的表面上,润滑剂的选择和下面的表面纹理在稳定润滑剂和减少冷凝物的钉扎中起着至关重要的作用。通过适当设计的表面来促进低表面张力流体的逐滴冷凝,我们证明了传热系数提高了四到八倍。

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