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Biomimetic super-hydrophobic surfaces for use in enhanceddropwise condensation

机译:用于增强型凝结的仿生超疏水表面

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There have been many attempts to enhance heat transfer during the condensation (vapor to liquid) process since condensation is a critical heat transfer mechanism in many industrial processes. One conventional method of enhancing condensation heat transfer is to specially treat the condensing heat exchanger surface to adequately promote so-called "dropwise" condensation. Biomimetically constructed coating with hydrophobic materials is often employed for surface treatment. This coating on the condensing heat transfer surface effectively shifts the condensation mode from filmwise (the conventional heat transfer mode) to dropwise (similar to lotus leaves?), resulting in much higher condensation heat transfer. In this method the thickness of coatings is a key parameter governing the heat transfer rate. Thin coating benefits the heat transfer but can lead to weakening hydrophobicity and failure to have an acceptable life span. However, thick coating reduces or eliminates the merit of the dropwise condensation phenomenon because the coating introduces additional thermal resistance. Herein, we report an innovative biomimetic concept in connection with a surface treatment that potentially solves the aforementioned issues. Instead of using conventional dense coatings on the condensing surface, the concept of randomly arranged or tructurally oriented nano or submicro-scale fins and/or porous surfaces similar to nature-invented hydrophobic surfaces allowing molecular clustering for effective steam condensation, is presented and experimentally verified.
机译:由于冷凝是许多工业过程中的临界传热机制,已经有许多尝试增强冷凝(蒸汽到液体)过程。一种增强冷凝传热的传统方法是特别地处理冷凝热交换器表面以充分促进所谓的“滴液”缩合。具有疏水材料的生物构建的涂层通常用于表面处理。冷凝传热表面上的该涂层有效地将冷凝模式从胶片(传统的传热模式)滴(类似于莲花叶),导致更高的冷凝热传递。在该方法中,涂层的厚度是控制传热速率的关键参数。薄涂层有利于热传递,但会导致疏水性疲软,并且未能具有可接受的寿命。然而,由于涂层引入了额外的热阻,厚涂层减少或消除了滴凝块现象的优点。在此,我们报告了一种与表面处理有关的创新仿生概念,可能解决了上述问题。呈现并在实验上验证和实验验证,而不是在冷凝表面上使用传统的致密涂层,而是随机布置的纳米纳米或亚亚微粒鳍和/或多孔表面类似于允许分子聚类的自然发明的疏水表面,允许用于有效的蒸汽冷凝的纳米或亚亚微粒浆料和/或多孔表面。 。

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