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Personalized ventilation as a control measure for airborne transmissible disease spread

机译:个性化通风以控制空气传播的疾病

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摘要

The protective role of personalized ventilation (PV) against plausible airborne transmissible disease was investigated using cough droplets released from a ‘coughing machine’ simulating the human cough at different distances (1, 1.75 and 3 m) from the PV user. Particle image velocimetry was used to characterize and visualize the interaction between the cough-generated multiphase flow and PV-induced flow in the inhalation zone of the thermal breathing manikin. A dose–response model for unsteady imperfectly mixed environment was used to estimate the reduction in infection risk of two common diseases that can be transmitted by airborne mode. PV was able to both reduce the peak aerosol concentration levels and shorten the exposure time at all the examined injection distances. PV could reduce the infection risks of two diseases, influenza A and tuberculosis, by between 27 and 65 per cent. The protection offered by PV is less effective at a distance of 1.75 m than the other distances, as shown in the risk assessment results, as the PV-generated flow was blown off by the cough-generated flow for the longest time. Results of this study demonstrate the ability of desktop PV to mitigate the infection risk of airborne transmissible disease.
机译:研究人员使用“咳嗽机”释放的咳嗽滴来模拟个性化通气(PV)对可能的空中传播性疾病的保护作用,该液滴模拟了距PV用户不同距离(分别为1.75、1.75和3 m)的人类咳嗽。在热呼吸人体模型的吸入区中,使用颗粒图像测速法来表征和可视化咳嗽产生的多相流与PV诱导的流之间的相互作用。不稳定非完全混合环境的剂量反应模型用于估计两种可以通过空中传播的常见疾病的感染风险的降低。 PV既可以降低峰值气溶胶浓度水平,又可以缩短所有检查的喷射距离下的暴露时间。 PV可以将两种疾病(甲型流感和肺结核)的感染风险降低27%至65%。如风险评估结果所示,由于PV产生的气流被咳嗽产生的气流吹走的时间最长,因此PV在距离1.75 m处提供的保护效果不如其他距离有效。这项研究的结果证明了台式PV能够减轻空气传播的疾病的感染风险。

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