采用特殊设计单元:模拟和实验方法,最大限度地提高254 nm UV-C光的消毒效果

Hanyu Chen, Carmen I. Moraru, Vladimir V. Protasenko
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引用次数: 0

摘要

我们提出了一种特殊设计的封闭装置,促进杀菌UV-C光的各向同性分布,以有效消毒难以到达的表面。采用实验和计算相结合的方法研究了该装置对大肠杆菌和李斯特菌的消毒效果。采用不锈钢、铜金属和铜聚合物作为不同粗糙度和疏水性的固体衬底。处理3分钟后,相对于UV-C源,不同位置的细菌减少量高达6.9 log CFU (20-990 mJ/ cm2,具体取决于位置)。失活动力学呈非线性,符合Weibull模型(0.77≤r2≤0.97)。利用光学光线追踪模拟生成空间光分布图,再结合微生物失活动力学生成空间失活图。采用的建模方法准确地预测了不同位置的微生物失活,预测数据和实验数据之间只有很小的差异(±8%)。这些发现表明,所提出的设备适用于消毒各种难以接触的表面,在食品和医疗保健行业有许多可能的应用。此外,这里使用的建模方法可用于帮助设计高效的紫外线处理系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maximizing the disinfection effectiveness of 254 nm UV-C light with a special design unit: simulation and experimental approaches
We propose a special design enclosure device that promotes isotropic distribution of germicidal UV-C light for the effective disinfection of difficult to reach surfaces. We used experimental and computational approaches to investigate the disinfection efficacy of this device against Escherichia coli and Listeria innocua . Stainless steel, Copper metal, and a Copper polymer were used as solid substrates of varying roughness and hydrophobicity. Bacteria reductions of up to 6.9 log CFU were achieved at various locations relative to the UV-C source after 3 min of treatment (20–990 mJ/cm 2 cumulative fluence depending on the location). Inactivation kinetics was nonlinear and followed the Weibull model (0.77 ≤ R 2 ≤ 0.97). Optical ray tracing simulation was used to generate maps of spatial light distribution, which were then coupled with microbial inactivation kinetics to create spatial maps of inactivation. The modeling approach used accurately predicted microbial inactivation at various locations, with only small discrepancies (±8%) between predicted and experimental data. These findings demonstrate that the proposed device is suitable for disinfecting various hard to reach surfaces, with numerous possible applications in the food and healthcare industries. Additionally, the modeling approach used here can be used to aid in the design of a highly effective Ultraviolet treatment system.
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