Likelihood of survival of coronavirus in a respiratory droplet deposited on a solid surface
arXiv:2005.10897 · doi:10.1063/5.0012009
Abstract
We predict and analyze the drying time of respiratory droplets from a COVID-19 infected subject, which is a crucial time to infect another subject. The drying of the droplet is predicted by diffusion-limited evaporation model for a sessile droplet placed on a partially-wetted surface with a pinned contact line. The variation of droplet volume, contact angle, ambient temperature, and humidity are considered. We analyze the chances of the survival of the viruses present in the droplet, based on the lifetime of the droplets in several conditions, and find that the chances of survival of the virus are strongly affected by each of these parameters. The magnitude of shear stress inside the droplet computed using the model is not large enough to obliterate the virus. We also explore the relationship between the drying time of a droplet and the growth rate of the spread of COVID-19 for five different cities, and find that they are weakly correlated.
References in corpus (1)
Cited by in corpus (10)
- Visualizing droplet dispersal for face shields and masks with exhalation valves
- Insights on drying and precipitation dynamics of respiratory droplets in the perspective of Covid-19
- Particle modeling of the spreading of Coronavirus Disease (COVID-19)
- Droplet evaporation residue indicating SARS-COV-2 survivability on surfaces
- Lattice Boltzmann simulations of stochastic thin film dewetting
- Statistical mechanics study of the introduction of a vaccine against COVID-19 disease
- Airborne virus transmission under different weather conditions
- Intricate Evaporation Dynamics in Different Multi-Droplet Configurations
- Role of Fluid Forces and Depletion Interactions in Directing Assembly of Aqueous Gold Nanorods on Hydrophobic Surfaces
- Sequentially estimating the dynamic contact angle of sessile saliva droplets in view of SARS-CoV-2