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Validation of large-scale, monochromatic UV disinfection systems for drinking water using dyed microspheres

机译:使用染色微球验证饮用水的大型单色紫外线消毒系统

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Dyed microspheres have been developed as a new method for validation of ultraviolet (UV) reactor systems. When properly applied, dyed microspheres allow measurement of the UV dose distribution delivered by a photochemical reactor for a given operating condition. Prior to this research, dyed microspheres had only been applied to a bench-scale UV reactor. The goal of this research was to extend the application of dyed microspheres to large-scale reactors. Dyed microsphere tests were conducted on two prototype large-scale UV reactors at the UV Validation and Research Center of New York (UV Center) in Johnstown, NY. All microsphere tests were conducted under conditions that had been used previously in biodosimetry experiments involving two challenge bacteriophage: MS2 and Qβ. Numerical simulations based on computational fluid dynamics and irradiance field modeling were also performed for the same set of operating conditions used in the microspheres assays. Microsphere tests on the first reactor illustrated difficulties in sample collection and discrimination of microspheres against ambient particles. Changes in sample collection and work-up were implemented in tests conducted on the second reactor that allowed for improvements in microsphere capture and discrimination against the background. Under these conditions, estimates of the UV dose distribution from the microspheres assay were consistent with numerical simulations and the results of biodosimetry, using both challenge organisms. The combined application of dyed microspheres, biodosimetry, and numerical simulation offers the potential to provide a more in-depth description of reactor performance than any of these methods individually, or in combination. This approach also has the potential to substantially reduce uncertainties in reactor validation, thereby leading to better understanding of reactor performance, improvements in reactor design, and decreases in reactor capital and operating costs.
机译:已开发出染色微球,作为验证紫外线(UV)反应器系统的新方法。正确使用后,染色微球可以测量光化学反应器在给定操作条件下传递的紫外线剂量分布。在进行这项研究之前,染色的微球仅应用于台式紫外反应器。这项研究的目的是将染色微球的应用扩展到大型反应器。在纽约州约翰斯敦的纽约紫外线验证和研究中心(紫外线中心)的两个原型大型紫外线反应器上进行了染色微球测试。所有微球测试均在先前涉及两个挑战性噬菌体:MS2和Qβ的生物剂量学实验中使用的条件下进行。还针对微球测定中使用的同一组操作条件,进行了基于计算流体动力学和辐照场建模的数值模拟。在第一个反应器上进行的微球测试说明了样品收集方面的困难以及微球与周围颗粒的区别。在第二个反应器上进行的测试中实现了样品收集和后处理的变化,从而改善了微球的捕获和背景识别。在这些条件下,使用两种挑战性生物体进行微球测定得出的紫外线剂量分布估计与数值模拟和生物剂量测定结果一致。染色微球,生物剂量学和数值模拟的组合应用提供了比单独或组合使用这些方法中的任何一种方法更深入地描述反应堆性能的潜力。这种方法还可能大大减少反应堆验证中的不确定性,从而使人们更好地了解反应堆性能,改进反应堆设计,并减少反应堆投资和运行成本。

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