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Sizing of airborne particles in an operating room

Medical procedures that produce aerosolized particles are under great scrutiny due to the recent concerns surrounding the COVID-19 virus and increased risk for nosocomial infections. For example, thoracostomies, tracheotomies and intubations/extubations produce aerosols that can linger in the air. T...

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Autores principales: Tkacik, Peter T., Dahlberg, Jerry L., Johnson, James E., Hoth, James J., Szer, Rebecca A., Hellman, Samuel E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8021156/
https://www.ncbi.nlm.nih.gov/pubmed/33819294
http://dx.doi.org/10.1371/journal.pone.0249586
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author Tkacik, Peter T.
Dahlberg, Jerry L.
Johnson, James E.
Hoth, James J.
Szer, Rebecca A.
Hellman, Samuel E.
author_facet Tkacik, Peter T.
Dahlberg, Jerry L.
Johnson, James E.
Hoth, James J.
Szer, Rebecca A.
Hellman, Samuel E.
author_sort Tkacik, Peter T.
collection PubMed
description Medical procedures that produce aerosolized particles are under great scrutiny due to the recent concerns surrounding the COVID-19 virus and increased risk for nosocomial infections. For example, thoracostomies, tracheotomies and intubations/extubations produce aerosols that can linger in the air. The lingering time is dependent on particle size where, e.g., 500 μm (0.5 mm) particles may quickly fall to the floor, while 1 μm particles may float for extended lengths of time. Here, a method is presented to characterize the size of <40 μm to >600 μm particles resulting from surgery in an operating room (OR). The particles are measured in-situ (next to a patient on an operating table) through a 75mm aperture in a ∼400 mm rectangular enclosure with minimal flow restriction. The particles and gasses exiting a patient are vented through an enclosed laser sheet while a camera captures images of the side-scattered light from the entrained particles. A similar optical configuration was described by Anfinrud et al.; however, we present here an extended method which provides a calibration method for determining particle size. The use of a laser sheet with side-scattered light provides a large FOV and bright image of the particles; however, the particle image dilation caused by scattering does not allow direct measurement of particle size. The calibration routine presented here is accomplished by measuring fixed particle distribution ranges with a calibrated shadow imaging system and mapping these measurements to the in-situ imaging system. The technique used for generating and measuring these particles is described. The result is a three-part process where 1) particles of varying sizes are produced and measured using a calibrated, high-resolution shadow imaging method, 2) the same particle generators are measured with the in-situ imaging system, and 3) a correlation mapping is made between the (dilated) laser image size and the measured particle size. Additionally, experimental and operational details of the imaging system are described such as requirements for the enclosure volume, light management, air filtration and control of various laser reflections. Details related to the OR environment and requirements for achieving close proximity to a patient are discussed as well.
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spelling pubmed-80211562021-04-14 Sizing of airborne particles in an operating room Tkacik, Peter T. Dahlberg, Jerry L. Johnson, James E. Hoth, James J. Szer, Rebecca A. Hellman, Samuel E. PLoS One Research Article Medical procedures that produce aerosolized particles are under great scrutiny due to the recent concerns surrounding the COVID-19 virus and increased risk for nosocomial infections. For example, thoracostomies, tracheotomies and intubations/extubations produce aerosols that can linger in the air. The lingering time is dependent on particle size where, e.g., 500 μm (0.5 mm) particles may quickly fall to the floor, while 1 μm particles may float for extended lengths of time. Here, a method is presented to characterize the size of <40 μm to >600 μm particles resulting from surgery in an operating room (OR). The particles are measured in-situ (next to a patient on an operating table) through a 75mm aperture in a ∼400 mm rectangular enclosure with minimal flow restriction. The particles and gasses exiting a patient are vented through an enclosed laser sheet while a camera captures images of the side-scattered light from the entrained particles. A similar optical configuration was described by Anfinrud et al.; however, we present here an extended method which provides a calibration method for determining particle size. The use of a laser sheet with side-scattered light provides a large FOV and bright image of the particles; however, the particle image dilation caused by scattering does not allow direct measurement of particle size. The calibration routine presented here is accomplished by measuring fixed particle distribution ranges with a calibrated shadow imaging system and mapping these measurements to the in-situ imaging system. The technique used for generating and measuring these particles is described. The result is a three-part process where 1) particles of varying sizes are produced and measured using a calibrated, high-resolution shadow imaging method, 2) the same particle generators are measured with the in-situ imaging system, and 3) a correlation mapping is made between the (dilated) laser image size and the measured particle size. Additionally, experimental and operational details of the imaging system are described such as requirements for the enclosure volume, light management, air filtration and control of various laser reflections. Details related to the OR environment and requirements for achieving close proximity to a patient are discussed as well. Public Library of Science 2021-04-05 /pmc/articles/PMC8021156/ /pubmed/33819294 http://dx.doi.org/10.1371/journal.pone.0249586 Text en © 2021 Tkacik et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Tkacik, Peter T.
Dahlberg, Jerry L.
Johnson, James E.
Hoth, James J.
Szer, Rebecca A.
Hellman, Samuel E.
Sizing of airborne particles in an operating room
title Sizing of airborne particles in an operating room
title_full Sizing of airborne particles in an operating room
title_fullStr Sizing of airborne particles in an operating room
title_full_unstemmed Sizing of airborne particles in an operating room
title_short Sizing of airborne particles in an operating room
title_sort sizing of airborne particles in an operating room
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8021156/
https://www.ncbi.nlm.nih.gov/pubmed/33819294
http://dx.doi.org/10.1371/journal.pone.0249586
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