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首页> 外文期刊>International Journal of Heat and Mass Transfer >Enhancement of condensation heat transfer on a microstructured surface with wettability gradient
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Enhancement of condensation heat transfer on a microstructured surface with wettability gradient

机译:用润湿性梯度提高微结构化表面上的冷凝传热

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Micro- and nanoscale phase-change phenomena are becoming increasingly important for heat transfer owing to the rapid development of microelectromechanical system (MEMS) technology in the fields of microsystems such as in advanced electronics or biomedical devices. In particular, many studies on drop-wise condensation have been conducted based on progress of material science for hydrophobic or hy-drophilic surfaces. Although majority of these studies achieved high heat transfer performance under low subcooling conditions, the heat transfer coefficient decreased as subcooling increased because of condensate removal limitations. Our previous study using a bi-philic surface with microgrooved structures failed in terms of flooding wherein several patterns were covered by a large liquid film because of poor drainage ability. In microsystems, gravity or vapor shearing forces are ineffective in enhancing droplet departure from the condensing surface as the spaces of the microsystem are limited. Thus, to enhance condensation heat transfer, the flooding and plugging phenomena need to be considered, and therefore, a novel condensing surface needs to be fabricated to remove the growing droplets from the condensing surface. Herein, we introduced a wettability gradient by gradually changing the pattern widths of the hydrophobic and hydrophilic surfaces. The groove width of the hydrophilic part was designed to increase as the condensate flowed downstream. The experiments were conducted under low steam pressure conditions; we found that the size of the droplets could be controlled by modifying the pattern width and the wettability gradient could be used to remove large droplets. The flooding was suppressed, and the heat transfer coefficient was enhanced by three times compared with the results of the microstructured condensing surface with a straight pattern. These results showed that the wettability gradient effectively enhanced condensation heat transfer.
机译:由于在高级电子设备或生物医学设备中的微型机电系统(MEMS)技术的快速发展,微型和纳米级相变现象正变得越来越重要。特别地,已经基于用于疏水或Hy-淫水表面的材料科学的进展来进行许多关于脱落凝结的研究。尽管大多数这些研究在低过冷条件下实现了高传热性能,但由于冷凝物除去限制,随着过冷却的增加,传热系数减少。我们以前的研究,使用双碎片结构的双素表面在洪水方面失灵,其中由于排水能力差,大型液体膜覆盖了几种图案。在微系统中,随着微系统的空间受到限制,在增强从冷凝表面的液滴出发时,重力或蒸汽剪切力是无效的。因此,为了增强冷凝传热,需要考虑泛滥和堵塞现象,因此需要制造新的冷凝表面以从冷凝表面去除生长液滴。这里,我们通过逐渐改变疏水性和亲水性表面的图案宽度来引入润湿性梯度。随着冷凝物在下游流动的情况下,亲水部分的槽宽度设计成增加。实验在低蒸汽压力条件下进行;我们发现,可以通过修改图案宽度来控制液滴的尺寸,并且可以使用润湿性梯度来去除大液滴。抑制了洪水,与具有直图案的微结构化冷凝表面的结果相比,传热系数增强了三次。这些结果表明,润湿性梯度有效地增强了凝结热传递。

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