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PMID: 33213833 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Minimising exposure to droplet and aerosolised pathogens: a computational fluid dynamics study.

British journal of anaesthesia ·Vol. 126 ·No. 2 ·2021-00-00 ·Pages 544-549

Perella P, Tabarra M, Hataysal E, Pournasr A, Renfrew I

Abstract

Hazardous pathogens are spread in either droplets or aerosols produced during aerosol-generating procedures (AGP). Adjuncts minimising exposure of healthcare workers to hazardous pathogens released during AGP may be beneficial. We used state-of-the-art computational fluid dynamics (CFD) modelling to optimise the performance of a custom-designed shield. We modelled airflow patterns and trajectories of particles (size range 1-500 μm) emitted during a typical cough using CFD (ANSYS Fluent software, Canonsburg, PA, USA), in the presence and absence of a protective shield enclosing the head of a patient. We modelled the effect of different shield designs, suction tube position, and suction flow rate on particle escape from the shield. Use of the shield prevented escape of 99.1-100% of particles, which were either trapped on the shield walls (16-21%) or extracted via suction (79-82%). At most, 0.9% particles remained floating inside the shield. Suction flow rates (40-160 L min-1) had no effect on the final location of particles in a closed system. Particle removal from within the shield was optimal when a suction catheter was placed vertically next to the head of the patient. Addition of multiple openings in the shield reduced the purging performance from 99% at 160 L min-1 to 67% at 40 L min-1. CFD modelling provides information to guide optimisation of the efficient removal of hazardous pathogens released during AGP from a custom-designed shield. These data are essential to establish before clinical use, pragmatic clinical trials, or both.

Keywords
COVID-19 SARS-CoV-2 aerosol-generating procedure airway management computational fluid dynamics infection prevention and control personal protective equipment viruses
MeSH 主题词
Aerosols COVID-19/transmission Cough/virology Equipment Design Health Personnel Humans Hydrodynamics Infectious Disease Transmission, Patient-to-Professional/prevention & control Models, Theoretical Occupational Exposure/prevention & control Personal Protective Equipment
化学物质
Aerosols
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Perella Paolo
Department of Anaesthesia & Perioperative Medicine, Royal London Hospital, Barts Health NHS Trust, London, UK. Electronic address: [email protected].
Tabarra Mohammad
Arup, London, UK.
Hataysal Ertan
Arup, London, UK.
Pournasr Amir
Arup, London, UK.
Renfrew Ian
Department of Interventional Radiology, Royal London Hospital, Barts Health NHS Trust, London, UK.
Article Info
Journal
British journal of anaesthesia
Abbr.
Br J Anaesth
ISSN
1471-6771
Corresponding email
Published
2021-00-00
Epub
2020-00-16
Pages
544-549
Language
English
Country/Region
England
NLM ID
0372541
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