English

The motion of respiratory droplets produced by coughing

Fluid Dynamics 2021-02-03 v1 Medical Physics

Abstract

Coronavirus disease 2019 (COVID-19) has become a global pandemic infectious respiratory disease with high mortality and infectiousness. This paper investigates respiratory droplet transmission, which is critical to understanding, modeling and controlling epidemics. In the present work, we implemented flow visualization, particle image velocimetry (PIV) and particle shadow tracking velocimetry (PSTV) to measure the velocity of the airflow and droplets involved in coughing and then constructed a physical model considering the evaporation effect to predict the motion of droplets under different weather conditions. The experimental results indicate that the convection velocity of cough airflow presents the relationship t0.7t^{-0.7} with time; hence, the distance from the cougher increases by t0.3t^{0.3} in the range of our measurement domain. Substituting these experimental results into the physical model reveals that the small droplets (initial diameter DD \leq 100 μ\mum) evaporate to droplet nuclei and that the large droplets with DD \geq 500 μ\mum and initial velocity u0u_0 \geq 5 m/s travel more than 2 m. Winter conditions of low temperature and high relative humidity can cause more droplets to settle to the ground, which may be a possible driver of a second pandemic wave in the autumn and winter seasons.

Keywords

Cite

@article{arxiv.2010.12781,
  title  = {The motion of respiratory droplets produced by coughing},
  author = {Hongping Wang and Zhaobin Li and Xinlei Zhang and Lixing Zhu and Yi Liu and Shizhao Wang},
  journal= {arXiv preprint arXiv:2010.12781},
  year   = {2021}
}

Comments

27 pages, 15 figures, COVID-19, article