Role of air distribution in SARS transmission during the largest nosocomial outbreak in Hong Kong

Роль распределения воздуха в передаче SARS во время крупнейшей внутрибольничной вспышки в Гонконге
Yuguo Li, Xinhua Huang, I. Yu, T W Wong, Hua Qian
2005-02-28

SARS transmissionairborne transmissionbio-aerosol dispersioncomputational fluid dynamicshospital ventilation
UNLABELLED: Severe acute respiratory syndrome (SARS) is primarily transmitted by bio-aerosol droplets or direct personal contacts. This paper presents a detailed study of environmental evidence of possible airborne transmission in a hospital ward during the largest nosocomial SARS outbreak in Hong Kong in March 2003. Retrospective on-site inspections and measurements of the ventilation design and air distribution system were carried out on July 17, 2003. Limited on-site measurements of bio-aerosol dispersion were also carried out on July 22. Computational fluid dynamics simulations were performed to analyze the bio-aerosol dispersion in the hospital ward. We attempted to predict the air distribution during the time of measurement in July 2003 and the time of exposure in March 2003. The predicted bio-aerosol concentration distribution in the ward seemed to agree fairly well with the spatial infection pattern of SARS cases. Possible improvement to air distribution in the hospital ward was also considered. PRACTICAL IMPLICATIONS: Our study revealed the need for the development of improved ventilation and air-conditioning systems in an isolation ward or a general hospital ward for infectious respiratory diseases. The outbreak in Ward 8A, which was in a general hospital and could house nearly 40 patients, demonstrated the cross-infection risks of respiratory infectious diseases in hospitals if a potential highly infectious patient was not identified and isolated. Our example simulation, which extended the SARS Busters' design for an isolation room to Ward 8A, demonstrated that there was room for improvement to minimize cross-infection in large general hospital wards.
1
Computational fluid dynamics simulations showed that predicted bio-aerosol concentration patterns in the ward agreed fairly well with the spatial distribution of SARS infections.
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Environmental investigations provided evidence consistent with possible airborne transmission of SARS through the hospital ward’s air-distribution system.
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Extending an isolation-room ventilation design to Ward 8A indicated that air distribution could be improved to minimize cross-infection.
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The Ward 8A outbreak demonstrated substantial cross-infection risks when a highly infectious respiratory patient is not promptly identified and isolated.
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The study identified a need to improve ventilation and air-conditioning systems in isolation units and large general hospital wards.

Air distribution and bio-aerosol dispersion in a hospital ward during the 2003 Hong Kong nosocomial SARS outbreak

The relationship between ventilation-driven bio-aerosol concentration patterns and the spatial transmission and cross-infection of SARS, including implications for improving ward air distribution

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2005-02-28
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Yuguo Li
Xinhua Huang
I. Yu
T W Wong
Hua Qian
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