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The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation

By performing unsteady CFD simulations using RNG k–ɛ model and dynamic mesh technique, this paper investigates how the walking motion of health care worker (HCW) influences gaseous dispersion in a six-bed isolation room with nine downward supplies and six ceiling-level or floor-level exhausts. The f...

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Detalles Bibliográficos
Autores principales: Hang, Jian, Li, Yuguo, Jin, Ruiqiu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier Ltd. 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7126717/
https://www.ncbi.nlm.nih.gov/pubmed/32288027
http://dx.doi.org/10.1016/j.buildenv.2014.03.029
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author Hang, Jian
Li, Yuguo
Jin, Ruiqiu
author_facet Hang, Jian
Li, Yuguo
Jin, Ruiqiu
author_sort Hang, Jian
collection PubMed
description By performing unsteady CFD simulations using RNG k–ɛ model and dynamic mesh technique, this paper investigates how the walking motion of health care worker (HCW) influences gaseous dispersion in a six-bed isolation room with nine downward supplies and six ceiling-level or floor-level exhausts. The flow near and behind HCW is easily affected by HCW motion. The flow disturbance induced by HCW walking with swinging arms and legs is a mixing process. The walking HCW displaces air in front of it and carries air in the wake forwardly, meanwhile pressure difference drives air from two lateral sides into the wake. HCW motion (0–5.4 s) indeed induces a little gaseous dispersion, but the residual flow disturbance after HCW stops (5.4 s–25.4 s) induces more gaseous agent spread and it requires more than 30–60 s to approximately recover to the initial state after HCW stops. Although HCW motion indeed affects airborne transmission, but its effect is less important than ventilation design. No matter with or without HCW motion, the ceiling-level exhausts perform much better in controlling airborne transmission than the floor-level exhausts with the same air change rate (12.9 ACH). Smaller air change rate of 6 ACH experiences higher concentration and more gaseous spread than 12.9 ACH. In contrast to the realistic human walking, the simplified motion of a rectangular block produces stronger flow disturbance. Finally surface heating of HCW produces a stronger thermal body plume and enhances turbulence near HCW, thus slightly strengthens airborne transmission.
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spelling pubmed-71267172020-04-08 The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation Hang, Jian Li, Yuguo Jin, Ruiqiu Build Environ Article By performing unsteady CFD simulations using RNG k–ɛ model and dynamic mesh technique, this paper investigates how the walking motion of health care worker (HCW) influences gaseous dispersion in a six-bed isolation room with nine downward supplies and six ceiling-level or floor-level exhausts. The flow near and behind HCW is easily affected by HCW motion. The flow disturbance induced by HCW walking with swinging arms and legs is a mixing process. The walking HCW displaces air in front of it and carries air in the wake forwardly, meanwhile pressure difference drives air from two lateral sides into the wake. HCW motion (0–5.4 s) indeed induces a little gaseous dispersion, but the residual flow disturbance after HCW stops (5.4 s–25.4 s) induces more gaseous agent spread and it requires more than 30–60 s to approximately recover to the initial state after HCW stops. Although HCW motion indeed affects airborne transmission, but its effect is less important than ventilation design. No matter with or without HCW motion, the ceiling-level exhausts perform much better in controlling airborne transmission than the floor-level exhausts with the same air change rate (12.9 ACH). Smaller air change rate of 6 ACH experiences higher concentration and more gaseous spread than 12.9 ACH. In contrast to the realistic human walking, the simplified motion of a rectangular block produces stronger flow disturbance. Finally surface heating of HCW produces a stronger thermal body plume and enhances turbulence near HCW, thus slightly strengthens airborne transmission. Elsevier Ltd. 2014-07 2014-04-12 /pmc/articles/PMC7126717/ /pubmed/32288027 http://dx.doi.org/10.1016/j.buildenv.2014.03.029 Text en Copyright © 2014 Elsevier Ltd. All rights reserved. Since January 2020 Elsevier has created a COVID-19 resource centre with free information in English and Mandarin on the novel coronavirus COVID-19. The COVID-19 resource centre is hosted on Elsevier Connect, the company's public news and information website. Elsevier hereby grants permission to make all its COVID-19-related research that is available on the COVID-19 resource centre - including this research content - immediately available in PubMed Central and other publicly funded repositories, such as the WHO COVID database with rights for unrestricted research re-use and analyses in any form or by any means with acknowledgement of the original source. These permissions are granted for free by Elsevier for as long as the COVID-19 resource centre remains active.
spellingShingle Article
Hang, Jian
Li, Yuguo
Jin, Ruiqiu
The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title_full The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title_fullStr The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title_full_unstemmed The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title_short The influence of human walking on the flow and airborne transmission in a six-bed isolation room: Tracer gas simulation
title_sort influence of human walking on the flow and airborne transmission in a six-bed isolation room: tracer gas simulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7126717/
https://www.ncbi.nlm.nih.gov/pubmed/32288027
http://dx.doi.org/10.1016/j.buildenv.2014.03.029
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