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OPTIMIZATION OF MIXED HYDROPHILIC AND HYDROPHOBIC SURFACES UNDER LAMINAR FLOW CONDITIONS

机译:层流条件下混合亲水性和疏水表面的优化

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When condensation first forms on a surface, it starts as tiny droplets. As the surface continues to collect condensation, the droplets grow together and form a film. The film increases the thermal resistance of the system. It is possible to remove the fluid from the condensing surface before it develops into a film. Dropwise condensation has the capability of providing up to an order of magnitude higher heat transfer than film condensation.A hydrophobic surface is capable of sustaining dropwise condensation but creates a high energy barrier that restricts nucleation. A hydrophilic surface has a low energy barrier for nucleation but retains the water quickly transitioning to film condensation. A hydrophilic and hydrophobic patterned surface creates a surface with a low nucleation energy barrier and is capable of sustaining dropwise condensation.Surface patterns are evaluated under laminar flow conditions to maximize mass collection. The surfaces are evaluated using a thermal model, which includes an equivalent thermal resistance for diffusion. Laminar flow rates are evaluated using Reynolds numbers from 1.218 to 4x10~5. Hydrophilic nodules sizes are evaluated from 0.1 mm to 3.7 mm. Under natural convection flow, mass collection can be increased by 20% with respect to film heat transfer.
机译:当冷凝第一在表面上形成时,它开始作为微小的液滴。随着表面继续收集冷凝,液滴一起生长并形成薄膜。薄膜增加了系统的热阻。在将流体从冷凝表面开发成薄膜之前可以从冷凝表面中除去流体。滴加冷凝具有比薄膜缩合的较高的传热量高的能力。疏水表面能够维持滴缩,但产生高能量屏障,其限制核心。亲水性表面具有低能量屏障,用于成核,但保持水快速过渡到薄膜冷凝。亲水性和疏水图案化表面产生具有低成核能屏障的表面,并且能够维持滴加缩合。表面图案在层流条件下评估以最大化质量收集。使用热模型评估表面,其包括用于扩散的等效热阻。使用从1.218至4x10〜5的雷诺数评估层流量速率。亲水性结节尺寸评估0.1mm至3.7mm。在自然对流流中,相对于薄膜热转印,质量集可以增加20%。

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