首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Optimal Design of Slippery Liquid-Infused Porous Surfaces for Enhanced Condensation of Low Surface Tension Fluids
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APS -APS March Meeting 2017 - Event - Optimal Design of Slippery Liquid-Infused Porous Surfaces for Enhanced Condensation of Low Surface Tension Fluids

机译:APS -APS 2017年3月会议-活动-光滑的注液多孔表面的优化设计,可增强低表面张力流体的冷凝

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Vapor condensation is routinely used as an effective means of transferring heat or separating fluids. Dropwise condensation, where discrete droplets form on the condenser surface, exhibits 5 -- 7x higher heat transfer performance than filmwise condensation, where the condensate spreads over the surface. However, promoting dropwise condensation of low surface tension fluids is particularly challenging since the typical hydrophobic condenser coatings used to promote dropwise condensation of water (surface tension 73 mN/m) often do not repel fluids with low surface tensions (extless 30 mN/m). Recent work has indicated that slippery liquid-infused porous surfaces (SLIPS) can promote dropwise condensation of low surface tension fluids by introducing a lubricant immiscible with the condensate into a rough structure on the condenser surface. We developed a detailed model of condensation on SLIPS using the van Oss-Chaudhury-Good theory as a framework to determine the feasibility of any arbitrary solid-lubricant-condensate system, and we validated our model with experimental results. This work enables optimal design of SLIPS for enhanced condensation of low surface tension fluids which promises significant energy savings in applications such as thermal management and power generation.
机译:蒸汽凝结通常被用作传递热量或分离流体的有效手段。逐滴凝结是在冷凝器表面形成离散液滴的地方,其传热性能比薄膜凝结在整个表面上分散的薄膜凝结要高5-7倍。但是,促进低表面张力流体的逐滴冷凝是特别具有挑战性的,因为用于促进水逐滴冷凝(表面张力73 mN / m)的典型疏水性冷凝器涂层通常不会排斥低表面张力(至少30 mN / m)的流体。最近的工作表明,通过将与冷凝液不混溶的润滑剂引入冷凝器表面的粗糙结构中,光滑的注入液体的多孔表面(SLIPS)可以促进低表面张力流体的逐滴冷凝。我们使用van Oss-Chaudhury-Good理论作为框架来确定SLIPS上冷凝的详细模型,以确定任何固体润滑剂-冷凝物系统的可行性,并通过实验结果验证了该模型。这项工作可实现SLIPS的最佳设计,以增强低表面张力流体的冷凝效果,从而有望在热管理和发电等应用中节省大量能源。

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