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Sunlight Inactivation of Viruses in Open-Water Unit Process Treatment Wetlands: Modeling Endogenous and Exogenous Inactivation Rates

机译:在开阔水域单位处理湿地中病毒的阳光灭活:内源和外源灭活率建模

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摘要

Sunlight inactivation is an important mode of disinfection for viruses in surface waters. In constructed wetlands, for example, open-water cells can be used to promote sunlight disinfection and remove pathogenic viruses from wastewater. To aid in the design of these systems, we developed predictive models of virus attenuation that account for endogenous and exogenous sunlight-mediated inactivation mechanisms. Inactivation rate models were developed for two viruses, MS2 and poliovirus type 3; laboratory- and field-scale experiments were conducted to evaluate the models' ability to estimate inactivation rates in a pilot-scale, open-water, unit-process wetland cell. Endogenous inactivation rates were modeled using either photoaction spectra or total, incident UVB irradiance. Exogenous inactivation rates were modeled on the basis of virus susceptibilities to singlet oxygen. Results from both laboratory- and field-scale experiments showed good agreement between measured and modeled inactivation rates. The modeling approach presented here can be applied to any sunlit surface water and utilizes easily measured inputs such as depth, solar kradiance, water matrix absorbance, singlet oxygen concentration, and the virus-specific apparent second-order rate constant with singlet oxygen (k_2). Interestingly, the MS2 k_2 in the open-water wetland was found to be significantly larger than k_2 observed in other waters in previous studies. Examples of how the model can be used to design and optimize natural treatment systems for virus inactivation are provided.
机译:阳光灭活是消毒地表水中病毒的一种重要方式。例如,在人工湿地中,开放水域细胞可用于促进日光消毒并从废水中去除病原性病毒。为了帮助设计这些系统,我们开发了病毒衰减的预测模型,该模型解释了内源性和外源性阳光介导的失活机制。针对两种病毒MS2和3型脊髓灰质炎病毒建立了灭活率模型。进行了实验室和现场规模的实验,以评估模型评估中试规模,开阔水域,单元过程湿地单元中失活率的能力。内源灭活速率是使用光反应谱或总入射UVB辐照度建模的。根据病毒对单线态氧的敏感性对外源失活率进行建模。实验室规模和现场规模的实验结果均表明,测得的失活速率与模型失活速率之间具有良好的一致性。此处介绍的建模方法可以应用于任何阳光照射的地表水,并利用易于测量的输入值,例如深度,日光辐射度,水基质吸光度,单线态氧浓度以及带有单线态氧(k_2)的病毒特异性表观速率常数。有趣的是,在先前研究中,发现开放水湿地中的MS2 k_2明显大于其他水域中的k_2。提供了如何将该模型用于设计和优化病毒灭活的自然处理系统的示例。

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  • 来源
    《Environmental Science & Technology》 |2015年第5期|2757-2766|共10页
  • 作者单位

    Department of Civil & Environmental Engineering, University of California, Berkeley, California 94720-1710, United States,Engineering Research Center for Re-Inventing the Nation's Urban Water Infrastructure (ReNUWIt), Berkeley, California 94305, United States;

    Department of Civil & Environmental Engineering, University of California, Berkeley, California 94720-1710, United States,Engineering Research Center for Re-Inventing the Nation's Urban Water Infrastructure (ReNUWIt), Berkeley, California 94305, United States;

    Engineering Research Center for Re-Inventing the Nation's Urban Water Infrastructure (ReNUWIt), Berkeley, California 94305, United States,Institute of Biogeochemistry and Pollutant Dynamics, ETH Zurich, CH-8092 Zurich, Switzerland;

    Department of Civil & Environmental Engineering, University of California, Berkeley, California 94720-1710, United States,Engineering Research Center for Re-Inventing the Nation's Urban Water Infrastructure (ReNUWIt), Berkeley, California 94305, United States,Department of Chemical Engineering and Water Innovation & Research Centre (WIRC), University of Bath, Claverton Down, Bath BA2 7AY, United Kingdom;

    Department of Civil & Environmental Engineering, University of California, Berkeley, California 94720-1710, United States,Engineering Research Center for Re-Inventing the Nation's Urban Water Infrastructure (ReNUWIt), Berkeley, California 94305, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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