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Virus removal and inactivation in a photocatalytic membrane reactor: Disinfection mechanisms and effect of water quality.

机译:光催化膜反应器中的病毒去除和失活:消毒机理和水质的影响。

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摘要

Waterborne diseases pose great health threat to humans and result in huge economic losses. One of the effective way to avoid the infections by waterborne microorganisms is water disinfection. Conventional disinfection methods include chlorination, chloramination and ozonation. However, the inevitable production of disinfection by-products (DBPs) and the inability to inactivate certain resistant microbial species are drawbacks of the conventional disinfection methods. In addition, with the transition to lower quality water sources and an increasing role of water reuse, conventional disinfection methods may no longer be sufficient. Alternative treatment methods with higher efficiency and smaller energy demand are urgently required.;Numerous studies have been conducted to explore the application of photocatalytic membrane reactors (PMRs) in water treatment. Most of these studies have focused on the removal of chemicals, often employing dyes as model pollutants. PMRs applications to water disinfection, however, are very limited. Only five studies employed concurrent filtration and photocatalytic disinfection. In four of the five publications, the same type of bacterium was used as the bacterial model. In the present work, a novel hybrid photocatalytic UV-membrane filtration system was designed and applied for water disinfection. To the best of our knowledge, this is the first application of a PMR for virus removal and inactivation in water. Two types of viruses and two types of waters were used to test the performance of the hybrid system. The hybrid system is shown to retain the advantages of photocatalytic UV disinfection and membrane filtration and to synergistically mitigate drawbacks of each of these two processes. In addition, batch experiments were also conducted to understand the mechanism of photocatalytic inactivation of viruses in water and to examine the effect of water quality on the photocatalytic inactivation of viruses. Water quality affects the kinetics of photocatalytic inactivation, which fits Collins-Selleck model in DI water and a first-order reaction in pre-filtered surface water.
机译:水传播疾病对人类健康构成极大威胁,并造成巨大的经济损失。避免水传播微生物感染的有效方法之一是水消毒。常规的消毒方法包括氯化,氯化和臭氧化。然而,不可避免地产生消毒副产物(DBP)和不能使某些抗性微生物物种失活是常规消毒方法的缺点。另外,随着向低质量水源的过渡以及水回用作用的增加,传统的消毒方法可能不再足够。迫切需要具有更高效率和更小的能源需求的替代处理方法。进行了大量研究以探索光催化膜反应器(PMR)在水处理中的应用。这些研究大多数集中在化学物质的去除上,通常采用染料作为模型污染物。但是,PMR在水消毒中的应用非常有限。只有五项研究同时进行过滤和光催化消毒。在五个出版物中的四个中,将相同类型的细菌用作细菌模型。在目前的工作中,设计了一种新型的混合光催化紫外膜过滤系统,并将其用于水消毒。据我们所知,这是PMR在水中病毒去除和灭活中的首次应用。两种类型的病毒和两种类型的水被用来测试混合系统的性能。混合系统显示出保留了光催化紫外线消毒和膜过滤的优势,并协同缓解了这两个过程各自的缺点。此外,还进行了批量实验,以了解水中病毒的光催化灭活机理,并研究水质对病毒光催化灭活的影响。水质会影响光催化失活的动力学,这符合去离子水中的Collins-Selleck模型和预先过滤的地表水中的一级反应。

著录项

  • 作者

    Guo, Bin.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Environmental engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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