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首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Hydrodynamic slip enhanced nanofluidic reverse electrodialysis for salinity gradient energy harvesting
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Hydrodynamic slip enhanced nanofluidic reverse electrodialysis for salinity gradient energy harvesting

机译:流体动力学滑动增强型纳米流体反向电渗析,用于盐度梯度能量收割

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Nanofluidic reverse electrodialysis offers an alternative way to harvest the widely-existing salinity gradient energy. In this study, we investigate the impacts of surface hydrodynamic slip modification on the ionic current rectification and salinity gradient energy conversion via a conical nanopore by thermodynamic analysis and numerical simulation. Results reveal that in the configuration where hydrodynamic slip modification is employed on the surface near the tip side, a small modification fraction contributes to the ionic current rectification due to significantly enhanced ion enrichment, while a larger hydrodynamic slip modification fraction goes against the ionic current rectification for deteriorated ion enhancement and induced counter-electric field concentration gradient near the base side. For energy conversion, at low concentration ratios, a large modification fraction brings an obvious augment on the electric power. However, it decreases energy conversion efficiency. At a concentration ratio of 100-fold, the electric power is increased by 60.7%, when half of the nanopore wall is modified into hydrodynamic slip. And the energy conversion efficiency is decreased by 6.41%. These findings shed light on the role of hydrodynamic slip modification on the ion transportation and salinity gradient energy conversion, and help developing high performance nanofluidic systems via hydrodynamic slip modifications.
机译:纳米流体反向电渗析提供了一种收获广泛存在的盐度梯度能量的替代方法。在这项研究中,我们通过热力学分析和数值模拟研究了通过锥形纳米孔对离子电流防滑改性对离子电流整流和盐度梯度能量转化的影响。结果表明,在尖端侧的表面上采用流体动力滑动改性的配置中,由于显着增强的离子富集,小型改性分数有助于离子电流整流,而较大的流体动力滑动改性馏分抵抗离子电流整流对于劣化的离子增强和诱导基部附近的反电场浓度梯度。对于能量转换,在低浓度比率下,大型修改分数使电力显而易见。但是,它降低了能量转换效率。以100倍的浓度比,电力增加60.7%,当纳米孔壁的一半被修改为流体动力滑动时。并且能量转换效率降低了6.41%。这些发现揭示了流体动力滑动改性对离子运输和盐度梯度能量转化的作用,并通过流体动力滑动修饰帮助开发高性能纳米流体系统。

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