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首页> 外文期刊>Scientific reports. >Microfluidics Chip for Directional Solvent Extraction Desalination of Seawater
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Microfluidics Chip for Directional Solvent Extraction Desalination of Seawater

机译:用于定向溶剂萃取海水的微流体芯片

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Directional solvent extraction is one of the promising membrane-less seawater desalination method. This technique was not extensively investigated due the poor mixing and separation performances of its bench-scale system. It is believed that, overcoming these drawbacks is possible now with the rapid development of microfluidics technology that enabled high-precession micro mixing and separation. This work presents microfluidics chip for extracting and separating salt from seawater. The chip was designed with two sections for extraction and separation. In both sections, the liquids were separated using capillary channels perpendicular to the main stream. The main channels were designed to be 400?μm in width and 100?μm in height. Two streams inlets were introduced through a Y-junction containing octanoic acid as the organic phase and saltwater as the aqueous phase. The desalination performance was investigated at four different temperatures and five different solvent flow rates. Water product salinity was recorded to be as low as 0.056% (w/w) at 60?°C and 40?mL/h. A maximum water yield of 5.2% was achieved at 65?°C and 40?mL/h with a very low solvent residual (70 ppm). The chip mass transfer efficiency was recorded to be as high as 68% under similar conditions. The fabricated microfluidic desalination system showed a significant improvement in terms of water yield and separation efficiency over the conventional macroscale. The high performance of this microsystem resulted from its ability to achieve a high mixing efficiency and separate phases selectively and that will provide a good platform in the near future to develop small desalination kits for personal use.
机译:定向溶剂萃取是有前途的薄膜海水淡化方法之一。由于其工作台级系统的混合和分离性能差,该技术未被广泛研究。据信,克服这些缺点现在可以随着微流体技术的快速发展,使能高效微混合和分离。这项工作提出了微流体芯片,用于从海水中提取和分离盐。该芯片设计有两个部分,用于提取和分离。在两个切片中,使用垂直于主流的毛细管通道分离液体。主通道设计为400Ωμm,高度为100Ωμm。通过含有辛酸的Y型连接物作为有机相和作为水相的盐水引入两个流入口。在四种不同的温度和五种不同的溶剂流速下研究了脱盐性能。将水产物盐度记录为60℃和40μl/ h的低至0.056%(w / w)。以非常低的溶剂残留(70ppm),在65℃和40μl/ h处实现5.2%的最大水产率。在类似条件下,芯片传质效率被记录为高达68%。制造的微流体脱盐系统在常规宏观上的水产量和分离效率方面表现出显着改善。这种微系统的高性能是由于其能够在不选择地实现高混合效率和单独的相位,并且将在不久的将来提供一个很好的平台,以开发用于个人使用的小海水淡化套件。

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