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Visualization of droplet condensation in membrane distillation desalination with surface modification: hydrophilicity, hydrophobicity, and wicking spacers

机译:膜蒸馏脱盐中液滴凝结的可视化表面改性:亲水性,疏水性和芯吸间隔物

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摘要

Condensation performance is a key target for improving the energy efficiency of thermal desalination technologies such as air gap membrane distillation (AGMD). This study includes the first visualization of condensation in AGMD, through the use of a high conductivity, transparent sapphire condenser surface. The study examines how flow patterns are affected by several novel modifications, including varied surface hydrophobicity, module tilt angle, and gap spacer design. The experimental results were analyzed with numerical modeling. While the orientation of the mesh spacer, which holds the air gap apart, was found to have no substantial effect on the permeate production rate, the surface's hydrophobicity or hydrophilicity did result in different rates. The hydrophobic surface exhibited fewer droplets bridging the gap, more spherical droplets, and better droplet shedding. For gap sizes less than ~3 mm, the hydrophilic surface frequently had regions of water pinned around the surface itself and the plastic spacer. While the flow patterns observed were more complex than the film condensation typically used to model the process, the simplified numerical modelling yielded good agreement with the data when an adjustment factor was used to account for the gap size.
机译:冷凝性能是提高热脱盐技术(如气隙膜蒸馏(AGMD))的能效的关键目标。这项研究包括通过使用高电导率,透明的蓝宝石冷凝器表面来首次可视化AGMD中的冷凝。这项研究研究了几种新颖的修改如何影响流动模式,这些修改包括变化的表面疏水性,模块倾斜角和间隙垫片设计。用数值模型分析了实验结果。虽然发现使空气间隙保持分开的网状间隔物的方向对渗透物的生产率没有实质影响,但表面的疏水性或亲水性确实导致了不同的速率。疏水表面显示出更少的液滴弥合间隙,更多的球形液滴,更好的液滴脱落。对于小于约3 mm的间隙,亲水性表面经常在表面本身和塑料垫片周围钉住水区域。尽管观察到的流动模式比通常用于模型化过程的薄膜冷凝更为复杂,但是当使用调整因子来计算间隙大小时,简化的数字模型与数据具有良好的一致性。

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