Airborne spread of expiratory droplet nuclei between the occupants of indoor environments: A review
Воздушное распространение ядер экспираторных капель между людьми, находящимися в помещениях: обзор
2018-04-23
SCID: 54.1/ruj6acwy
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Reynolds-averaged Navier-Stokesairborne transmissioncomputational fluid dynamicsexpiratory droplet nucleiindoor environments
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Abstract (AI)
This article reviews past studies of airborne transmission between occupants in indoor environments, focusing on the spread of expiratory droplet nuclei from mouth/nose to mouth/nose for non-specific diseases. Special attention is paid to summarizing what is known about the influential factors, the inappropriate simplifications of the thermofluid boundary conditions of thermal manikins, the challenges facing the available experimental techniques, and the limitations of available evaluation methods. Secondary issues are highlighted, and some new ways to improve our understanding of airborne transmission indoors are provided. The characteristics of airborne spread of expiratory droplet nuclei between occupants, which are influenced correlatively by both environmental and personal factors, were widely revealed under steady-state conditions. Owing to the different boundary conditions used, some inconsistent findings on specific influential factors have been published. The available instrumentation was too slow to provide accurate concentration profiles for time-dependent evaluations of events with obvious time characteristics, while computational fluid dynamics (CFD) studies were mainly performed in the framework of inherently steady Reynolds-averaged Navier-Stokes modeling. Future research needs in 3 areas are identified: the importance of the direction of indoor airflow patterns, the dynamics of airborne transmission, and the application of CFD simulations.
Key Findings
1
Airborne spread is jointly influenced by environmental and personal factors, with most evidence obtained under steady-state conditions.
2
CFD investigations have predominantly relied on inherently steady Reynolds-averaged Navier–Stokes modeling, limiting analysis of transmission dynamics.
3
Existing measurement instruments are too slow to accurately resolve concentration profiles during strongly time-dependent transmission events.
4
Future research should prioritize indoor airflow direction, dynamic airborne transmission, and improved CFD simulation approaches.
5
Inconsistent findings about specific influential factors are attributed partly to differing thermal-manikin thermofluid boundary conditions.
6
The review synthesizes evidence on airborne transmission of expiratory droplet nuclei between occupants in indoor environments.
Research Object
Airborne spread of expiratory droplet nuclei between occupants in indoor environments
Research Subject
The characteristics, influential environmental and personal factors, boundary-condition effects, measurement limitations, and dynamic behavior of airborne transmission
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2018-04-23
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