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使用胶束增强超滤法从水溶液中去除砷酸盐。

Arsenate removal from aqueous solutions using micellar-enhanced ultrafiltration.

作者信息

Bahmani Pegah, Maleki Afshin, Rezaee Reza, Mahvi Amir Hossein, Khamforoush Mehrdad, Dehestani Athar Saeed, Daraei Hiua, Gharibi Fardin, McKay Gordon

机构信息

1Environmental Health Research Center, Research Institute for Health Development, Kurdistan University of Medical Sciences, Sanandaj, Iran.

2Center for Solid Waste Research, Institute for Environmental Research, Tehran University of Medical Sciences, Tehran, Iran.

出版信息

J Environ Health Sci Eng. 2019 Feb 19;17(1):115-127. doi: 10.1007/s40201-018-00332-z. eCollection 2019 Jun.

Abstract

In this study, arsenate (As-V) removal using micellar enhanced ultrafiltration (MEUF) modified by cationic surfactants was studied by a dead-end polyacrylonitrile (PAN) membrane apparatus. The UF membrane has been produced by a phase inversion process. The prepared membrane was characterized and analyzed for morphology and membrane properties. The influence of operating parameters such as initial concentrations of As-V, surfactants, pH, membrane thickness, and co-existing anions on the removal of As-V, surfactant rejection, and permeate flux have been studied. The experimental results show that from the two different cationic surfactants used the CPC (cetyl-pyridinium chloride) efficiency (91.7%) was higher than that of HTAB (hexadecyltrimethyl-ammonium bromide) (83.7%). The highest As-V removal was 100%, and was achieved using initial feed concentrations of 100-1000 μg/L at pH 7 with a membrane thickness of 150 μm in a dead-end filtration system. This efficiency for As-V removal was similar to that obtained using a cross-flow system. Nevertheless, this flux reduction was less than the reduction achieved in the dead-end filtration process. The PAN fabricated membrane in comparison to the RO and NF processes selectively removed the arsenic and the anions, in the water taken from the well, and had no substantial effect on the cations.

摘要

在本研究中,使用阳离子表面活性剂改性的胶束增强超滤(MEUF)通过死端聚丙烯腈(PAN)膜装置研究了砷酸盐(As-V)的去除。超滤膜通过相转化过程制备。对制备的膜进行了形态和膜性能的表征与分析。研究了操作参数如As-V的初始浓度、表面活性剂、pH值、膜厚度和共存阴离子对As-V去除、表面活性剂截留率和渗透通量的影响。实验结果表明,在所使用的两种不同阳离子表面活性剂中,十六烷基吡啶氯化物(CPC)的效率(91.7%)高于十六烷基三甲基溴化铵(HTAB)(83.7%)。在死端过滤系统中,使用pH值为7、膜厚度为150μm、初始进料浓度为100 - 1000μg/L时,As-V的最高去除率为100%。这种As-V的去除效率与使用错流系统获得的效率相似。然而,这种通量降低小于死端过滤过程中实现的降低。与反渗透(RO)和纳滤(NF)过程相比,所制备的PAN膜选择性地去除了取自水井的水中的砷和阴离子,对阳离子没有实质性影响。

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