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Assessment of the mixing air delivery system ability to protect occupants from the airborne infectious disease transmission using Wells-Riley approach

机译:使用Wells-Riley方法评估混合空气输送系统保护乘员免受空气传播传染病传播的能力

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Assessment of a mixing air delivery system's ability to protect occupants from airborne infectious disease transmission using the Wells - Riley equation modified for unsteady heterogenic conditions was performed in this study. Experiments were performed in a field environmental chamber equipped with mixing ventilation, while the cough was simulated using a cough machine. Results show that increase of supply flow rate up to 3 ACH rapidly reduces cough-induced inhalation fraction, but an increase above 6 ACH causes minor changes. When the infectiousness of the index case is relatively low, changes in the supply flow rate will not cause any change in the protective effectiveness of the air delivery system, while for the index case of relatively moderate infectiousness, an increase in supply flow rate up to 6 ACH will improve the protective effectiveness. For the index case of high infectiousness, an increase of supply flow rate will reduce the number of secondary cases for the 8-h exposure period. Maximum protective effectiveness depends only on ability of the system to reduce the exposure, but the index case infectiousness at which this is achieved will depend on the exposure period and exposure reduction.
机译:在这项研究中,使用针对不稳定的非均质条件修改的Wells-Riley方程,评估了混合空气输送系统保护乘员免受空气传播的传染病传播的能力。在配备有混合通风装置的野外环境室内进行实验,同时使用咳嗽机模拟咳嗽情况。结果表明,直至3 ACH的供应流量增加迅速降低了咳嗽诱发的吸入分数,但高于6 ACH的增加导致微小变化。当指示病例的传染性相对较低时,供应流量的变化将不会导致空气输送系统的防护效果发生任何变化,而对于传染性相对中等的指示病例,供应流量将增加直至6 ACH将提高防护效果。对于高传染性的指标病例,供应流量的增加将减少暴露在8小时内的二次病例的数量。最大的保护效果仅取决于系统减少暴露的能力,但达到这一目标的指标病例的传染性将取决于暴露时间和暴露减少。

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