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饮用水除氟综述。

Review of fluoride removal from drinking water.

作者信息

Mohapatra M, Anand S, Mishra B K, Giles Dion E, Singh P

机构信息

Institute of Minerals and Materials Technology, Bhubaneswar 751 013, Orissa, India.

出版信息

J Environ Manage. 2009 Oct;91(1):67-77. doi: 10.1016/j.jenvman.2009.08.015. Epub 2009 Sep 22.

Abstract

Fluoride in drinking water has a profound effect on teeth and bones. Up to a small level (1-1.5mg/L) this strengthens the enamel. Concentrations in the range of 1.5-4 mg/L result in dental fluorosis whereas with prolonged exposure at still higher fluoride concentrations (4-10mg/L) dental fluorosis progresses to skeletal fluorosis. High fluoride concentrations in groundwater, up to more than 30 mg/L, occur widely, in many parts of the world. This review article is aimed at providing precise information on efforts made by various researchers in the field of fluoride removal for drinking water. The fluoride removal has been broadly divided in two sections dealing with membrane and adsorption techniques. Under the membrane techniques reverse osmosis, nanofiltration, dialysis and electro-dialysis have been discussed. Adsorption, which is a conventional technique, deals with adsorbents such as: alumina/aluminium based materials, clays and soils, calcium based minerals, synthetic compounds and carbon based materials. Studies on fluoride removal from aqueous solutions using various reversed zeolites, modified zeolites and ion exchange resins based on cross-linked polystyrene are reviewed. During the last few years, layered double oxides have been of interest as adsorbents for fluoride removal. Such recent developments have been briefly discussed.

摘要

饮用水中的氟化物对牙齿和骨骼有深远影响。在较低水平(1-1.5毫克/升)时,它会强化牙釉质。浓度在1.5-4毫克/升范围内会导致氟斑牙,而在更高的氟化物浓度(4-10毫克/升)下长期接触,氟斑牙会发展为氟骨症。地下水中高浓度的氟化物,高达30毫克/升以上,在世界许多地区广泛存在。这篇综述文章旨在提供关于该领域各种研究人员在饮用水除氟方面所做努力的精确信息。除氟大致分为处理膜技术和吸附技术的两个部分。在膜技术方面,讨论了反渗透、纳滤、透析和电渗析。吸附作为一种传统技术,涉及的吸附剂有:氧化铝/铝基材料、粘土和土壤、钙基矿物、合成化合物和碳基材料。综述了使用各种反相沸石、改性沸石以及基于交联聚苯乙烯的离子交换树脂从水溶液中除氟的研究。在过去几年中,层状双氢氧化物作为除氟吸附剂受到关注。本文简要讨论了这些最新进展。

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