Keyword search (4,163 papers available)

"Transmission" Keyword-tagged Publications:

Title Authors PubMed ID
1 A corpus-assisted discourse study of parental concerns regarding multilingual child-rearing Quirk E; Brouillard M; Ahooja A; Ballinger S; Polka L; Byers-Heinlein K; Kircher R; 41199774
PSYCHOLOGY
2 A review on indoor airborne transmission of COVID-19- modelling and mitigation approaches Rayegan S; Shu C; Berquist J; Jeon J; Zhou LG; Wang LL; Mbareche H; Tardif P; Ge H; 40478135
ENCS
3 Quebec-based parents' concerns regarding their children's multilingual development Quirk E; Brouillard M; Ahooja A; Ballinger S; Polka L; Byers-Heinlein K; Kircher R; 39055771
PSYCHOLOGY
4 A unified stochastic SIR model driven by Lévy noise with time-dependency Easlick T; Sun W; 39027117
MATHSTATS
5 Social network dynamics, infant loss, and gut microbiota composition in female Colobus vellerosus during time periods with alpha male challenges Samartino S; Christie D; Penna A; Sicotte P; Ting N; Wikberg E; 38735025
BIOLOGY
6 Quebec-based Parents' Attitudes Towards Childhood Multilingualism: Evaluative Dimensions and Potential Predictors Kircher R; Quirk E; Brouillard M; Ahooja A; Ballinger S; Polka L; Byers-Heinlein K; 36051630
PSYCHOLOGY
7 Evaluating SARS-CoV-2 airborne quanta transmission and exposure risk in a mechanically ventilated multizone office building Yan S; Wang LL; Birnkrant MJ; Zhai J; Miller SL; 35602249
ENCS
8 Dynamics of SARS-CoV-2 spreading under the influence of environmental factors and strategies to tackle the pandemic: A systematic review Asif Z; Chen Z; Stranges S; Zhao X; Sadiq R; Olea-Popelka F; Peng C; Haghighat F; Yu T; 35317188
ENCS
9 A real-time web tool for monitoring and mitigating indoor airborne COVID-19 transmission risks at city scale Albettar M; Leon Wang L; Katal A; 35261876
ENCS
10 Visualization of SNARE-Mediated Organelle Membrane Hemifusion by Electron Microscopy. Mattie S, Kazmirchuk T, Mui J, Vali H, Brett CL 30317518
BIOLOGY

 

Title:A review on indoor airborne transmission of COVID-19- modelling and mitigation approaches
Authors:Rayegan SShu CBerquist JJeon JZhou LGWang LLMbareche HTardif PGe H
Link:https://pubmed.ncbi.nlm.nih.gov/40478135/
DOI:10.1016/j.jobe.2022.105599
Publication:Journal of building engineering
Keywords:AirborneBuildingCOVID-19MitigationModelingTransmission
PMID:40478135 Category: Date Added:2025-06-06
Dept Affiliation: ENCS
1 Centre for Zero Energy Building Studies, Department of Building, Civil and Environmental Engineering, Concordia University, 1455 de Maisonneuve Blvd. West, Montreal, Quebec, H3G 1M8, Canada.
2 Construction Research Centre, National Research Council Canada, M-24, 1200 Montreal Road, Ottawa, Ontario, K1A 0R6, Canada.

Description:

In the past few years, significant efforts have been made to investigate the transmission of COVID-19. This paper provides a review of the COVID-19 airborne transmission modeling and mitigation strategies. The simulation models here are classified into airborne transmission infectious risk models and numerical approaches for spatiotemporal airborne transmissions. Mathematical descriptions and assumptions on which these models have been based are discussed. Input data used in previous simulation studies to assess the dispersion of COVID-19 are extracted and reported. Moreover, measurements performed to study the COVID-19 airborne transmission within indoor environments are introduced to support validations for anticipated future modeling studies. Transmission mitigation strategies recommended in recent studies have been classified to include modifying occupancy and ventilation operations, using filters and air purifiers, installing ultraviolet (UV) air disinfection systems, and personal protection compliance, such as wearing masks and social distancing. The application of mitigation strategies to various building types, such as educational, office, public, residential, and hospital, is reviewed. Recommendations for future works are also discussed based on the current apparent knowledge gaps covering both modeling and mitigation approaches. Our findings show that different transmission mitigation measures were recommended for various indoor environments; however, there is no conclusive work reporting their combined effects on the level of mitigation that may be achieved. Moreover, further studies should be conducted to understand better the balance between approaches to mitigating the viral transmissions in buildings and building energy consumption.





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