On the efficacy of facial masks to suppress the spreading of pathogen-carrying saliva particles during human respiratory events: Insights gained via high-fidelity numerical modeling.

Medical research archives Pub Date : 2024-05-01 Epub Date: 2024-05-27 DOI:10.18103/mra.v12i5.5441
Hossein Seyedzadeh, Jonathan Craig, Ali Khosronejad
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Abstract

Respiratory fluid dynamics is integral to comprehending the transmission of infectious diseases and the effectiveness of interventions such as face masks and social distancing. In this research, we present our recent studies that investigate respiratory particle transport via high-fidelity large eddy simulation coupled with the Lagrangian particle tracking method. Based on our numerical simulation results for human respiratory events with and without face masks, we demonstrate that facial masks could significantly suppress particle spreading. The studied respiratory events include coughing and normal breathing through mouth and nose. Using the Lagrangian particle tracking simulation results, we elucidated the transport pathways of saliva particles during inhalation and exhalation of breathing cycles, contributing to our understanding of respiratory physiology and potential disease transmission routes. Our findings underscore the importance of respiratory fluid dynamics research in informing public health strategies to reduce the spread of respiratory infections. Combining advanced mathematical modeling techniques with experimental data will help future research on airborne disease transmission dynamics and the effectiveness of preventive measures such as face masks.

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关于口罩在人类呼吸道事件中抑制携带病原体的唾液颗粒扩散的功效:通过高保真数值建模获得的启示。
呼吸道流体动力学是理解传染病传播以及口罩和社会隔离等干预措施的有效性所不可或缺的。在这项研究中,我们介绍了最近通过高保真大涡流模拟和拉格朗日粒子跟踪法研究呼吸道粒子传输的研究。根据我们对戴口罩和不戴口罩的人类呼吸事件的数值模拟结果,我们证明了口罩可以显著抑制粒子的传播。研究的呼吸事件包括咳嗽和正常的口鼻呼吸。利用拉格朗日粒子跟踪模拟结果,我们阐明了唾液粒子在呼吸周期中吸入和呼出时的传输路径,有助于我们了解呼吸生理和潜在的疾病传播途径。我们的研究结果强调了呼吸流体动力学研究在为公共卫生战略提供信息以减少呼吸道感染传播方面的重要性。将先进的数学建模技术与实验数据相结合,将有助于未来对空气传播疾病的动态以及口罩等预防措施的有效性进行研究。
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