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Published on: August 22, 2018
Airborne spread of infectious agents in the indoor environment
1Department of Mechanical Engineering, The University of Hong Kong, Hong Kong.
Background:
Since the 2003 severe acute respiratory syndrome epidemic, scientific exploration of infection control is no longer restricted to microbiologists or medical scientists. Many studies have reported on the release, transport, and exposure of expiratory droplets because of respiratory activities. This review focuses on the airborne spread of infectious agents from mucus to mucus in the indoor environment and their spread as governed by airflows in the respiratory system, around people, and in buildings at different transport stages.
Methods:
We critically review the literature on the release of respiratory droplets, their transport and dispersion in the indoor environment, and the ultimate exposure of a susceptible host, as influenced by airflows.
Results:
These droplets or droplet nuclei are transported by expired airflows, which are sometimes affected by the human body plume and use of a face mask, as well as room airflow. Room airflow is affected by human activities such as walking and door opening, and some droplets are eventually captured by a susceptible individual because of his or her inspired flows; such exposure can eventually lead to long-range spread of airborne pathogens. Direct exposure to the expired fine droplets or droplet nuclei results in short-range airborne transmission. Deposition of droplets and direct personal exposure to expired large droplets can lead to the fomite route and the droplet-borne route, respectively.
Conclusions:
We have shown the opportunities for infection control at different stages of the spread. We propose that the short-range airborne route may be important in close contact, and its control may be achieved by face masks for the source patients and use of personalized ventilation. Our discussion of the effect of thermal stratification and expiratory delivery of droplets leads to the suggestion that displacement ventilation may not be applicable to hospital rooms where respiratory infection is a concern.
Insights
Understanding airborne infectious disease spread is crucial for infection control. This review details how respiratory droplets travel indoors and how airflow impacts transmission, offering insights for prevention strategies.
Area of Science:
- Environmental Health
- Infectious Disease Epidemiology
- Aerosol Science
Background:
- Post-2003 SARS epidemic, infection control research expanded beyond medical fields.
- Numerous studies investigate the release, transport, and exposure dynamics of respiratory droplets.
- This review synthesizes knowledge on airborne pathogen spread within indoor environments.
Purpose of the Study:
- To critically review literature on respiratory droplet transmission.
- To analyze the influence of airflow on droplet transport and host exposure.
- To identify infection control opportunities at various transmission stages.
Main Methods:
- Systematic literature review of studies on respiratory droplet dynamics.
- Analysis of factors influencing droplet release, transport, and dispersion.
- Evaluation of airflow effects in respiratory systems, occupied spaces, and buildings.
Main Results:
- Expired airflows, influenced by body plumes and masks, transport droplets.
- Room airflow, affected by human activities, impacts droplet dispersion and potential exposure.
- Transmission occurs via short-range airborne, droplet-borne, and fomite routes.
Conclusions:
- Short-range airborne transmission is significant in close contact settings.
- Face masks and personalized ventilation can mitigate short-range airborne spread.
- Displacement ventilation may be unsuitable for hospital rooms due to thermal stratification and droplet dynamics.
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