Association of the infection probability of COVID-19 with ventilation rates in confined spaces
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Anderson RM, Anderson B, May RM (1992). Infectious Diseases of Humans: Dynamics and Control. Oxford, UK: Oxford University Press.
Anfinrud P, Stadnytskyi V, Bax CE, Bax A (2020). Visualizing speechgenerated oral fluid droplets with laser light scattering. New England Journal of Medicine, 382: 2061–2063.
Buonanno G, Stabile L, Morawska L (2020). Estimation of airborne viral emission: Quanta emission rate of SARS-CoV-2 for infection risk assessment. Environment International, 141: 105794.
Chartier Y, Atkinson J, Pessoa-Silva C (2009). Natural ventilation for infection control in health-care settings. World Health Organization.
D’Arienzo M, Coniglio A (2020). Assessment of the SARS-CoV-2 basic reproduction number, R0, based on the early phase of COVID-19 outbreak in Italy. Biosafety and Health, 2: 57–59.
Davies A, Thompson KA, Giri K, Kafatos G, Walker J, Bennett A (2013). Testing the efficacy of homemade masks: would they protect in an influenza pandemic? Disaster Medicine and Public Health Preparedness, 7: 413–418.
Duan X, Zhao X, Wang B, Chen Y, Cao S (2013). Exposure Factors Handbook of Chinese Population (Adults). Beijing: China Environmental Science Press. (in Chinese)
Escombe AR, Oeser CC, Gilman RH, Navincopa M, Ticona E, et al. (2007). Natural ventilation for the prevention of airborne contagion. PLoS Medicine, 4: e68.
Fennelly KP, Nardell EA (1998). The relative efficacy of respirators and room ventilation in preventing occupational tuberculosis. Infection Control and Hospital Epidemiology, 19: 754–759.
Fisk WJ, Seppanen O, Faulkner D, Huang J (2004). Economic benefits of an economizer system: Energy savings and reduced sick leave. Technical Report, LBNL-54475, Lawrence Berkeley National Laboratory.
Foarde KK (1999). Methodology to perform clean air delivery rate type determinations with microbiological aerosols. Aerosol Science and Technology, 30: 235–245.
Guo Z-D, Wang Z-Y, Zhang S-F, Li X, Li L, et al. (2020). Aerosol and surface distribution of severe acute respiratory syndrome coronavirus 2 in hospital wards, Wuhan, China, 2020. Emerging Infectious Diseases, 26: 1583–1591.
Hui DS, Chow BK, Chu L, Ng SS, Lee N, et al. (2012). Exhaled air dispersion during coughing with and without wearing a surgical or N95 mask. PLoS One, 7: e50845.
Imai N, Cori A, Dorigatti I, Baguelin M, Donnelly CA, et al. (2020). Report 3: Transmissibility of 2019-nCoV. Imperial College London. Available at http://hdl.handle.net/10044/1777148.
Ji W, Zhao B (2015). Contribution of outdoor-originating particles, indoor-emitted particles and indoor secondary organic aerosol (SOA) to residential indoor PM2.5 concentration: A model-based estimation. Building and Environment, 90: 196–205.
Lee S, Golinski M, Chowell G (2012). Modeling optimal age-specific vaccination strategies against pandemic influenza. Bulletin of Mathematical Biology, 74: 958–980.
Li HL, Zhang XL, Wang K (2018). A quantitative study on the epidemic situation of tuberculosis based on the transmission disease dynamics in 14 prefectures of Xinjiang from 2005 to 2017. Chinese Journal of Infection Control, 17(11): 945–950. (in Chinese)
Li Q, Guan X, Wu P, Wang X, Zhou L, et al. (2020). Early transmission dynamics in Wuhan, China, of novel coronavirus-infected pneumonia. New England Journal of Medicine, 382: 1199–1207.
Liu Y, Gayle AA, Wilder-Smith A, Rocklöv J (2020a). The reproductive number of COVID-19 is higher compared to SARS coronavirus. Journal of Travel Medicine, 27(2): taaa021. https://doi.org/10.1093/jtm/taaa021
Liu Y, Ning Z, Chen Y, Guo M, Liu Y, et al. (2020b). Aerodynamic analysis of SARS-CoV-2 in two Wuhan hospitals. Nature, 582: 557–560.
Lu J, Gu J, Li K, Xu C, Su W, et al. (2020). COVID-19 outbreak associated with air conditioning in restaurant, Guangzhou, China, 2020. Emerging Infectious Diseases, 26: 1628–1631.
Majumder M, Mandl KD (2020). Early transmissibility assessment of a novel coronavirus in Wuhan, China. SSRN Electronic Journal, https://doi.org/10.2139/ssrn.3524675.
Morawska L, Cao J (2020). Airborne transmission of SARS-CoV-2: The world should face the reality. Environment International, 139: 105730.
National Research Council (2020). Rapid Expert Consultation on the Possibility of Bioaerosol Spread of SARS-CoV-2 for the COVID-19 Pandemic. Washington DC: The National Academies Press.
Plans Rubió P (2012). Is the basic reproductive number (R0) for measles viruses observed in recent outbreaks lower than in the pre-vaccination era? Euro Surveillance, 17(31): 20233.
Read JM, Bridgen JRE, Cummings DAT, Ho A, Jewell CP (2020). Novel coronavirus 2019-nCoV: Early estimation of epidemiological parameters and epidemic predictions. medRxiv, https://doi.org/10.1101/2020.01.23.20018549.
Riley EC, Murphy G, Riley RL (1978). Airborne spread of measles in a suburban elementary school. American Journal of Epidemiology, 107: 421–432.
Riou J, Althaus CL (2020). Pattern of early human-to-human transmission of Wuhan 2019 novel coronavirus (2019-nCoV), December 2019 to January 2020. Euro Surveillance, 25: 2000058.
Sherman MH, Wilson DJ (1986). Relating actual and effective ventilation in determining indoor air quality. Building and Environment, 21: 135–144.
Stadnytskyi V, Bax CE, Bax A, Anfinrud P (2020). The airborne lifetime of small speech droplets and their potential importance in SARS-CoV-2 transmission. Proceedings of the National Academy of Sciences of the United States of America(PNAS), 117: 11875–11877.
Stephens B (2012). HVAC filtration and the Wells-Riley approach to assessing risks of infectious airborne diseases. National Air Filtration Association (NAFA) Foundation Report.
Tang B, Bragazzi NL, Li Q, Tang S, Xiao Y, Wu J (2020). An updated estimation of the risk of transmission of the novel coronavirus (2019-nCov). Infectious Disease Modelling, 5: 248–255.
Van Doremalen N, Bushmaker T, Morris DH, Holbrook MG, Gamble A, et al. (2020). Aerosol and surface stability of SARS-CoV-2 as compared with SARS-CoV-1. New England Journal of Medicine, 382: 1564–1567.
WHO (2003). Consensus document on the epidemiology of severe acute respiratory syndrome (SARS) (No. WHO/CDS/CSR/GAR/2003.11). World Health Organization.
WHO (2019). WHO MERS global summary and assessment of risk, July 2019 (No. WHO/MERS/RA/19.1). World Health Organization.
Zhao B, Liu Y, Chen C (2020a). Air purifiers: A supplementary measure to remove airborne SARS-CoV-2. Building and Environment, 177: 106918.