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Large scale generation of micro-droplet array by vapor condensation on mesh screen piece

机译:通过网状筛片上的蒸汽冷凝大规模产生微滴阵列

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摘要

We developed a novel micro-droplet array system, which is based on the distinct three dimensional mesh screen structure and sintering and oxidation induced thermal-fluid performance. Mesh screen was sintered on a copper substrate by bonding the two components. Non-uniform residue stress is generated along weft wires, with larger stress on weft wire top location than elsewhere. Oxidation of the sintered package forms micro pits with few nanograsses on weft wire top location, due to the stress corrosion mechanism. Nanograsses grow elsewhere to show hydrophobic behavior. Thus, surface-energy-gradient weft wires are formed. Cooling the structure in a wet air environment nucleates water droplets on weft wire top location, which is more “hydrophilic” than elsewhere. Droplet size is well controlled by substrate temperature, air humidity and cooling time. Because warp wires do not contact copper substrate and there is a larger conductive thermal resistance between warp wire and weft wire, warp wires contribute less to condensation but function as supporting structure. The surface energy analysis of drops along weft wires explains why droplet array can be generated on the mesh screen piece. Because the commercial material is used, the droplet system is cost effective and can be used for large scale utilization.
机译:我们开发了一种新颖的微滴阵列系统,该系统基于独特的三维网筛结构以及烧结和氧化诱导的热流体性能。通过将两种成分粘合在一起,将网筛烧结在铜基板上。沿纬线产生不均匀的残余应力,在纬线顶部位置的应力大于其他位置。由于应力腐蚀机理,烧结包装的氧化形成微坑,在纬丝顶部位置上几乎没有纳米草。纳米草在其他地方生长以显示疏水行为。因此,形成了表面能梯度的纬线。在湿空气环境中冷却结构会使在纬线顶部位置的水滴成核,这比其他地方更“亲水”。液滴的大小受基材温度,空气湿度和冷却时间的控制良好。由于经线不与铜基板接触,并且经线和纬线之间存在较大的传导热阻,因此经线对凝结的贡献较小,但起支撑结构的作用。沿纬线的液滴的表面能分析解释了为什么可以在筛网片上产生液滴阵列的原因。因为使用了商业材料,所以液滴系统具有成本效益,可以用于大规模利用。

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