论文标题
流体动力学模拟表明,面膜可以抑制19.室内环境中的covid-19
Fluid dynamics simulations show that facial masks can suppress the spread of COVID-19 in indoor environments
论文作者
论文摘要
2019年的冠状病毒疾病爆发一直在全世界造成重大丧生和前所未有的经济损失。广泛建议在全球范围内推荐社交距离和面具,以保护他人并通过呼吸,咳嗽和打喷嚏来防止病毒传播。为了扩大此类建议的科学基础,我们对前所未有的分辨率和现实主义进行了高保真计算流体动力学模拟,以阐明在有和没有面部面膜的人类咳嗽期间唾液颗粒物转运的基本物理。我们的模拟:(a)在停滞的环境流(室内)和轻微的单向微风(室外)下进行; (b)结合了人体解剖学对流动的影响; (c)考虑医学和非医疗级面具; (d)考虑各种颗粒大小,范围从10微米到300微米。我们表明,在室内咳嗽期间,对于患有医疗级,非医学级和没有面部口罩的病例,一些唾液颗粒可能会高达0.48 m,0.73 m和2.62 m。因此,在室内环境中,医学或非医学级面罩可以成功地将唾液颗粒物的扩散限制在其他环境中。然而,在单向轻微微风的室外条件下,泄漏流穿过面具的泄漏会导致唾液颗粒被夹带到体内的能量剪切层中,并通过湍流在大距离内非常快地运输,从而限制了面部罩的有效性。
The Coronavirus disease outbreak of 2019 has been causing significant loss of life and unprecedented economical loss throughout the world. Social distancing and face masks are widely recommended around the globe in order to protect others and prevent the spread of the virus through breathing, coughing, and sneezing. To expand the scientific underpinnings of such recommendations, we carry out high-fidelity computational fluid dynamics simulations of unprecedented resolution and realism to elucidate the underlying physics of saliva particulate transport during human cough with and without facial masks. Our simulations: (a) are carried out under both a stagnant ambient flow (indoor) and a mild unidirectional breeze (outdoor); (b) incorporate the effect of human anatomy on the flow; (c) account for both medical and non-medical grade masks; and (d) consider a wide spectrum of particulate sizes, ranging from 10 micro m to 300 micro m. We show that during indoor coughing some saliva particulates could travel up to 0.48 m, 0.73 m, and 2.62 m for the cases with medical-grade, non-medical grade, and without facial masks, respectively. Thus, in indoor environments either medical or non-medical grade facial masks can successfully limit the spreading of saliva particulates to others. Under outdoor conditions with a unidirectional mild breeze, however, leakage flow through the mask can cause saliva particulates to be entrained into the energetic shear layers around the body and transported very fast at large distances by the turbulent flow, thus, limiting the effectiveness of facial masks.