Slippery liquid infused porous surface (SLIPS) condensers for high efficiency air gap membrane distillation.

Yashwant S Yogi, Harsharaj B Parmar, Hamid Fattahi Juybari, Sina Nejati, Akshay K Rao, Rishav Roy, Mojtaba Zarei, Longnan Li, Soumyadip Sett, Abhimanyu Das, Nenad Miljkovic, Justin A Weibel, David M Warsinger
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Abstract

To address growing water scarcity, we must improve the energy efficiency of thermal desalination technologies such as air gap membrane distillation. However, promising functional materials such as slippery liquid infused porous surfaces have not yet implemented for any desalination technology. Here, we fabricate and test slippery liquid infused porous surfaces (using Krytox 16,256 lubricant and CuO nanostructures) in an air gap membrane distillation apparatus. System-level transport models, validated by experimental data, establish a framework for improving performance through enhanced condensation surfaces. Results are obtained across a range of temperatures (50-80 °C), salinities (5-105 g/kg), and module lengths. We find that small air gap thickness and efficient droplet shedding significantly improves performance. The CuO Krytox process achieves these with a conductive-self-limiting coating, high nanostructure rugosity, strong covalent and metallic bonding, high hydrophobicity, minimal droplet pinning sites, and ultra-low contact angle hysteresis. The greatest efficiency enhancement from SLIPS is derived from the improved droplet shedding, which allows for reduced gap sizes without flooding, and is further augmented by the increased permeate flux.

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用于高效气隙膜蒸馏的多孔表面滑液(SLIPS)冷凝器。
为了解决日益严重的水资源短缺问题,我们必须提高热脱盐技术(如气隙膜蒸馏)的能源效率。然而,有前途的功能材料,如光滑的液体注入多孔表面,尚未用于任何海水淡化技术。在此,我们在气隙膜蒸馏装置中制备并测试了光滑的液体注入多孔表面(使用Krytox 16256润滑剂和CuO纳米结构)。通过实验数据验证的系统级传输模型建立了通过增强冷凝表面来提高性能的框架。结果可以在温度(50-80°C),盐度(5-105 g/kg)和模块长度范围内获得。我们发现小的气隙厚度和有效的液滴脱落显著提高了性能。CuO Krytox工艺通过导电自限涂层、高纳米结构粗糙度、强共价键和金属键、高疏水性、最小液滴钉钉位点和超低接触角迟滞来实现这些目标。滑移的最大效率提高来自于改善的液滴脱落,它允许在不发生驱油的情况下减小间隙尺寸,并通过增加渗透通量进一步增强。
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