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调整表面润湿性以降低呼吸道飞沫感染新冠病毒的几率,并提高个人防护装备的有效性。

Tailoring surface wettability to reduce chances of infection of COVID-19 by a respiratory droplet and to improve the effectiveness of personal protection equipment.

作者信息

Bhardwaj Rajneesh, Agrawal Amit

机构信息

Department of Mechanical Engineering, Indian Institute of Technology Bombay, Mumbai 400076, India.

出版信息

Phys Fluids (1994). 2020 Aug 1;32(8):081702. doi: 10.1063/5.0020249. Epub 2020 Aug 11.

Abstract

Motivated by the fact that the drying time of respiratory droplets is related to the spread of COVID-19 [R. Bhardwaj and A. Agrawal, "Likelihood of survival of coronavirus in a respiratory droplet deposited on a solid surface," Phys. Fluids , 061704, (2020)], we analyze the drying time of droplets ejected from a COVID-19 infected subject on surfaces of personal protection equipment (PPE), such as a face mask, of different wettabilities. We report the ratio of drying time of the droplet on an ideal superhydrophobic surface (contact angle, → 180°) to an ideal hydrophilic surface ( → 0°) and the ratio of the maximum to minimum drying time of the droplet on the surfaces with different contact angles. The drying time is found to be maximum if = 148°, while the aforementioned ratios are 4.6 and 4.8, respectively. These ratios are independent of the droplet initial volume, ambient temperature, relative humidity, and thermophysical properties of the droplet and water vapor. We briefly examine the change in drying time in the presence of impurities on the surface. Besides being of fundamental interest, the analysis provides insights that are useful while designing the PPE to tackle the present pandemic.

摘要

鉴于呼吸道飞沫的干燥时间与新冠病毒传播有关[R. 巴德瓦杰和A. 阿格拉瓦尔,“沉积在固体表面的呼吸道飞沫中冠状病毒存活的可能性”,《物理流体》,061704,(2020)],我们分析了新冠病毒感染患者喷出的飞沫在不同润湿性的个人防护装备(PPE)表面(如口罩)上的干燥时间。我们报告了飞沫在理想超疏水表面(接触角,→180°)与理想亲水表面(→0°)上干燥时间的比值,以及飞沫在不同接触角表面上最大与最小干燥时间的比值。发现当 = 148°时干燥时间最长,而上述比值分别为4.6和4.8。这些比值与飞沫初始体积、环境温度、相对湿度以及飞沫和水蒸气的热物理性质无关。我们简要研究了表面存在杂质时干燥时间的变化。除了具有基本的研究意义外,该分析还为设计应对当前疫情的个人防护装备提供了有用的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/61ad/8728633/4b79269075c3/PHFLE6-000032-081702_1-g001.jpg

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