Pulsed ultraviolet light decontamination of artifically-generated microbiological aerosols

L. Dougall, Jonathan Gillespie, M. Maclean, I. Timoshkin, Mark P. Wilson, S. Macgregor
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引用次数: 1

Abstract

Airborne transmission of infectious organisms is a major public health concern, particularly within healthcare and communal public environments. Methods of environmental decontamination utilising pulsed ultraviolet (UV) light are currently available, however it is important that germicidal efficacy against airborne contamination is established. In this study bacterial aerosols were generated and exposed to short duration pulses (~20 μs) of UV-rich light emitted from a xenon-filled flashlamp. The lamp was operated using a 1 kV solid-state pulsed power source, with a pulse frequency of 1 Hz, and output energy of 20 J/pulse. Post-treatment, air samples were extracted from the chamber and the surviving fraction was enumerated using standard microbiological culture methods. Results demonstrate successful aerosol inactivation, with a 92.1% reduction achieved with only 5 pulses of UV-rich light (P=<0.0002). Inactivation using continuous UV light was also investigated in order to quantify the comparative efficacy of these antimicrobial light sources. Overall, results provide evidence of the comparative efficacy of pulsed and continuous UV light for inactivation of airborne bacterial contamination. For practical application, given the safety restrictions limiting its application for decontamination of unoccupied environments, or within sealed enclosures such as air handling units, the reduced treatment times with PUV provides significant operational advantages over continuous light treatment.
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脉冲紫外线净化人工产生的微生物气溶胶
传染性生物的空气传播是一个主要的公共卫生问题,特别是在医疗保健和公共环境中。利用脉冲紫外线(UV)光进行环境净化的方法目前是可用的,但重要的是要确定对空气污染的杀菌效果。在这项研究中,细菌气溶胶被产生并暴露在氙气手电筒发出的短时间脉冲(~20 μs)的富紫外光下。该灯采用1 kV固态脉冲电源,脉冲频率为1 Hz,输出能量为20 J/脉冲。处理后,从室内提取空气样本,并使用标准微生物培养方法枚举存活部分。结果表明,气溶胶失活成功,仅用5次富紫外光脉冲就能减少92.1% (P=<0.0002)。为了量化这些抗菌光源的比较功效,还研究了使用连续紫外线灭活的方法。总的来说,结果提供了脉冲和连续紫外线对空气中细菌污染灭活的比较功效的证据。在实际应用中,考虑到安全限制限制了其在无人环境或密封外壳(如空气处理装置)中去污的应用,使用PUV减少处理时间比连续光处理具有显着的操作优势。
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