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旋转反渗透:通量与截留率的动态模型

Rotating reverse osmosis: a dynamic model for flux and rejection.

作者信息

Lee S, Lueptow R M

机构信息

Department of Mechanical Engineering, Northwestern University, Evanston, IL 60208, USA.

出版信息

J Memb Sci. 2001 Oct 15;192(2):129-43. doi: 10.1016/s0376-7388(01)00493-8.

Abstract

Reverse osmosis (RO) is a compact process for the removal of ionic and organic pollutants from contaminated water. However, flux decline and rejection deterioration due to concentration polarization and membrane fouling hinders the application of RO technology. In this study, a rotating cylindrical RO membrane is theoretically investigated as a novel method to reduce polarization and fouling. A dynamic model based on RO membrane transport incorporating concentration polarization is used to predict the performance of rotating RO system. Operating parameters such as rotational speed and transmembrane pressure play an important role in determining the flux and rejection in rotating RO. For a given geometry, a rotational speed sufficient to generate Taylor vortices in the annulus is essential to maintain high flux as well as high rejection. The flux and rejection were calculated for wide range of operating pressures and rotational speeds.

摘要

反渗透(RO)是一种用于从受污染水中去除离子和有机污染物的紧凑工艺。然而,由于浓差极化和膜污染导致的通量下降和截留率恶化阻碍了RO技术的应用。在本研究中,从理论上研究了旋转圆柱形RO膜作为减少极化和污染的新方法。基于结合浓差极化的RO膜传输的动态模型用于预测旋转RO系统的性能。诸如转速和跨膜压力等操作参数在确定旋转RO中的通量和截留率方面起着重要作用。对于给定的几何形状,足以在环形空间中产生泰勒涡旋的转速对于维持高通量和高截留率至关重要。计算了广泛操作压力和转速范围内的通量和截留率。

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