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首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Experimental and simulation studies of two types of 5-inch scale hollow fiber membrane modules for pressure-retarded osmosis
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Experimental and simulation studies of two types of 5-inch scale hollow fiber membrane modules for pressure-retarded osmosis

机译:两种类型的5英寸中空纤维膜模块的实验性和仿真研究,用于压力迟钝的渗透

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摘要

This study experimentally and theoretically analyzed the performance of two types of large-scale hollow fiber (HF) forward osmosis (FO) modules for pressure retarded osmosis (PRO). The effects of operating conditions on the module performance of the 5-inch scale HF modules with a cross-wound HF configuration were investigated. A modified analytical model, based on the friction-concentration polarization (FCP) model, which combined the PRO theory with water flux and salt leakage, was proposed for PRO performance estimation. The theoretical results agreed within 9.7% deviation with the experimental results under all conditions. The energy efficiency of the HF PRO module was also theoretically derived. The power generation estimation for the 5-inch membrane module revealed that 10 to 15% of the energy could be recovered from the reverse osmosis seawater desalination process. However, some parts of the membrane could not be used efficiently inside the modules because of the non-optimal dimensions. Therefore, new types of modules, having shorter lengths and larger module diameters, were proposed and provided greater net energy output, as compared with the original module, due to the reduction of both the region where the water was not sufficiently permeated and the pressure drop inside the HF membrane.
机译:本研究实验和理论地分析了两种类型的大型中空纤维(HF)前渗透(FO)模块的性能,用于压力延迟渗透(Pro)。研究了操作条件对具有交叉缠绕HF配置的5英寸刻度HF模块的模块性能的影响。提出了一种改进的分析模型,基于摩擦浓度偏振(FCP)模型,该模型将Pro理论与水通量和盐泄漏组合,以进行Pro性能估计。理论结果与在所有条件下的实验结果偏差9.7%内。理论上也是HF Pro模块的能效。 5英寸膜模块的发电估计显示,可以从反渗透海水淡化过程中回收10至15%的能量。然而,由于非最佳尺寸,膜的某些部分不能有效地在模块内部使用。因此,提出了具有较短长度和更大模块直径的新型模块,并提供了更大的净能量输出,与原始模块相比,由于水未充分渗透的区域和压降在HF膜内。

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