• FluTrackers.com Inc. does not provide medical advice. Information on this web site is collected from various internet resources, and the FluTrackers board of directors makes no warranty to the safety, efficacy, correctness or completeness of the information posted on this site by any author or poster. The information collated here is for instructional and/or discussion purposes only and is NOT intended to diagnose or treat any disease, illness, or other medical condition. Every individual reader or poster should seek advice from their personal physician/healthcare practitioner before considering or using any interventions that are discussed on this website. By continuing to access this website you agree to consult your personal physican before using any interventions posted on this website, and you agree to hold harmless FluTrackers.com Inc., the board of directors, the members, and all authors and posters for any effects from use of any medication, supplement, vitamin or other substance, device, intervention, etc. mentioned in posts on this website, or other internet venues referenced in posts on this website.
  • We are not asking for any donations. Do not donate to any entity who says they are raising funds for us.

Build Simul. A numerical study of ventilation strategies for infection risk mitigation in general inpatient wards

tetano

Editor, Senior Moderator
Build Simul. 2020 Feb 22:1-10. doi: 10.1007/s12273-020-0623-4. [Epub ahead of print]
A numerical study of ventilation strategies for infection risk mitigation in general inpatient wards.


Satheesan MK[SUP]1[/SUP], Mui KW[SUP]1[/SUP], Wong LT[SUP]1[/SUP].

Author information




Abstract

Aerial dispersion of human exhaled microbial contaminants and subsequent contamination of surfaces is a potential route for infection transmission in hospitals. Most general hospital wards have ventilation systems that drive air and thus contaminants from the patient areas towards the corridors. This study investigates the transport mechanism and deposition patterns of Middle East Respiratory Syndrome Coronavirus (MERS-CoV) within a typical six bedded general inpatient ward cubicle through numerical simulation. It demonstrates that both air change and exhaust airflow rates have significant effects on not only the airflow but also the particle distribution within a mechanically ventilated space. Moreover, the location of an infected patient within the ward cubicle is crucial in determining the extent of infection risk to other ward occupants. Hence, it is recommended to provide exhaust grilles in close proximity to a patient, preferably above each patient's bed. To achieve infection prevention and control, high exhaust airflow rate is also suggested. Regardless of the ventilation design, all patients and any surfaces within a ward cubicle should be regularly and thoroughly cleaned and disinfected to remove microbial contamination. The outcome of this study can serve as a source of reference for hospital management to better ventilation design strategies for mitigating the risk of infection.
? Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2020.



KEYWORDS:

bioaerosol dispersion; computational fluid dynamics (CFD); hospital general ward; indoor air quality (IAQ); infection risk; ventilation


PMID:32211123PMCID:PMC7090571DOI:10.1007/s12273-020-0623-4
 
Back
Top