Accès libre

Employing Atmospheric Sensors and Turbulent Energy Cascade Theory to Quantify Hazardous Airborne Transmissibility

À propos de cet article

Citez

Alhajeri H.M., Alenezi A.H., Almutairi A., Alhajeri M.H., Gamil A.A., Effects of Mist Fractions on Heat Transfer Characteristics in a Rotating Roughened Cooling Passage, Case Studies in Thermal Engineering, 14, 100506 (2019).10.1016/j.csite.2019.100506 Search in Google Scholar

Benzi R., Paladin G., Parisi G., Vulpiani A., On the Multifractal Nature of Fully Developed Turbulence and Chaotic Systems, J. Phys. A Math. Gen., 17, 3521 (1984).10.1088/0305-4470/17/18/021 Search in Google Scholar

Cheng H., Castro I.P., Near-Wall Flow Development After a Step Change in Surface Roughness, Boundary-Layer Meteorology, 105, 3, 411-432 (2002).10.1023/A:1020355306788 Search in Google Scholar

Drossinos Y., Stilianakis N.I., What Aerosol Physics Tells us About Airborne Pathogen Transmission, Aerosol Science and Technology, 54, 6, 639-643 (2020).10.1080/02786826.2020.1751055 Search in Google Scholar

Greenhalgh T., Jimenez J.L., Prather K.A., Tufekci Z., Fisman D., Schooley R., Ten Scientific Reasons in Support of Airborne Transmission of SARS-CoV-2, The lancet, 397(10285), 1603-1605 (2021).10.1016/S0140-6736(21)00869-2 Search in Google Scholar

Kays W.M., Crawford M.E., Convective Heat and Mass Transfer, McGraw-Hill, New York, 255-282, 1993. Search in Google Scholar

Lolli S., Chen Y.C., Wang S.H., Vivone G., Impact of Meteorological Conditions and Air Pollution on COVID-19 Pandemic Transmission in Italy, Scientific Reports, 10, 1, 1-15 (2020).10.1038/s41598-020-73197-8 Search in Google Scholar

McAllister S., Chen J.Y., Fernandez-Pello A.C., Fundamentals of Combustion Processes, 302, New York: Springer, 2011.10.1007/978-1-4419-7943-8 Search in Google Scholar

Molland A.F., Turnock S.R., Marine Rudders and Control Surfaces, Butterworth-Heinemann, 2007.10.1016/B978-075066944-3/50000-7 Search in Google Scholar

Pope S.B., Turbulent Flows, IOP Publishing, Bristol, 2001.10.1017/CBO9780511840531 Search in Google Scholar

Roșu I.A., Cazacu M.M., Ghenadi A.S., Bibire L., Agop M., On a Multifractal Approach of Turbulent Atmosphere Dynamics, Frontiers in Earth Science, 8, 216 (2020).10.3389/feart.2020.00216 Search in Google Scholar

Roșu I.A., Cazacu M.M., Agop M., Multifractal Model of Atmospheric Turbulence Applied to Elastic Lidar Data, Atmosphere, 12, 2, 226 (2021a).10.3390/atmos12020226 Search in Google Scholar

Roșu I.A., Nica D.C., Cazacu M.M., Agop M., Towards Possible Laminar Channels Through Turbulent Atmospheres in a Multifractal Paradigm, Atmosphere, 12, 8, 1038 (2021b).10.3390/atmos12081038 Search in Google Scholar

Schlichting H., Gersten K., Boundary-Layer Theory, Springer, Berlin, Heidelberg, 2016.10.1007/978-3-662-52919-5 Search in Google Scholar

Tani I., Turbulent Boundary Layer Development over Rough Surfaces, In Perspectives in Turbulence Studies, Springer, Berlin, Heidelberg, 223-249, 1987.10.1007/978-3-642-82994-9_9 Search in Google Scholar

Travis J., Piccioni Koch D., GASFLOW Simulations for Cryogenic Tank Loss of Vacuum Scenarios, Journal of Energy Challenges and Mechanics, 2, 1-9 (2015). Search in Google Scholar

Wang J., Tang K., Feng K., Lin X., Lv W., Chen K., Wang F., Impact of Temperature and Relative Humidity on the Transmission of COVID-19: A Modelling Study in China and the United States, BMJ open, 11, 2, e043863 (2021).10.1136/bmjopen-2020-043863 Search in Google Scholar

Whipple Kelin, Hydraulic Roughness, 12.163: Surface Processes and Landscape Evolution, MIT OCW (2004). Search in Google Scholar

White Frank M., Heat Transfer, Addison Wesley Publishing Company, Massachusetts, 1984. Search in Google Scholar

Ye L., Yang X., Sunden B., Feng Z., Effect of Droplet Characteristics on Heat Transfer of Mist/Air Cooling in a Pin-Finned Channel, Numerical Heat Transfer, Part A: Applications, 75, 5, 291-308 (2019).10.1080/10407782.2019.1586426 Search in Google Scholar

Yuan S., Jiang S.C., Li Z.L., Do Humidity and Temperature Impact the Spread of the Novel Coronavirus?, Frontiers in Public Health, 8, 240 (2020).10.3389/fpubh.2020.00240726687032574306 Search in Google Scholar

Zhao L., Qi Y., Luzzatto-Fegiz P., Cui Y., Zhu Y., COVID-19: Effects of Environmental Conditions on the Propagation of Respiratory Droplets, Nano letters, 20, 10, 7744-7750 (2020).10.1021/acs.nanolett.0c03331 Search in Google Scholar

https://www.uhhospitals.org/Healthy-at-UH/articles/2020/12/the-role-of-dry-winter-air-in-spreading-covid-19, Retrieved 2021-07-13. Search in Google Scholar

https://www.sciencedaily.com/releases/2020/08/200820102503.htm, Retrieved 2021-07-12. Search in Google Scholar