A mathematical model for accurately predicting face mask wearer?s inhalation exposure to self-exhaled and external pollutants
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[1] Chung-Hin Dung,et al. Protective facemask-induced facial thermal stress and breathing burden during exercise in gyms , 2023, Building and Environment.
[2] Z. Mourão,et al. Indoor environmental quality in offices and risk of health and productivity complaints at work: a literature review , 2023, Journal of Hazardous Materials Advances.
[3] Yinghe Guo,et al. A comparison study of the filtration behavior of air filtering materials of masks against inert and biological particles , 2023, Separation and Purification Technology.
[4] Jeng-Min Chiou,et al. Effect of indoor air quality on the association of long-term exposure to low-level air pollutants with cognition in older adults. , 2023, Environmental research.
[5] A. Habib,et al. Erratum: "Fluid mechanics of facial masks as personal protection equipment (PPE) of COVID-19 virus" [Rev. Sci. Instrum. 92, 074101 (2021)]. , 2023, The Review of scientific instruments.
[6] H. Wong,et al. Towards an accurate CFD prediction of airflow and dispersion through face mask , 2022, Building and Environment.
[7] Yunhua Chang,et al. Highly Time-Resolved and Nontargeted Characterization of Volatile Organic Compound Emissions from Face Masks , 2022, Environmental Science & Technology Letters.
[8] P. Wargocki,et al. The human oxidation field , 2022, Science.
[9] L. Zheng,et al. Filtration efficiency of N95 filtering facepiece respirators during multi-cycles of ‘8-hour simulated donning + disinfection’ , 2022, Journal of Hospital Infection.
[10] F. Esposito,et al. Outdoor and indoor measurements of number particles size distributions and equivalent black carbon (EBC) at a mechanical manufacturing plant , 2022, Atmospheric Pollution Research.
[11] C. Menassa,et al. Investigating the effect of wearing masks on office work in indoor environments during a pandemic using physiological sensing , 2022, Building and Environment.
[12] R. Mittal,et al. Perimeter leakage of face masks and its effect on the mask's efficacy , 2022, Physics of Fluids.
[13] Z. Ai,et al. Face shield intensifies inhaled exposure to self-generated bio-effluents , 2022, Building and Environment.
[14] Julia Bartels,et al. Effects of COVID-19 protective face masks and wearing durations on respiratory haemodynamic physiology and exhaled breath constituents , 2022, European Respiratory Journal.
[15] F. Violante,et al. Inhaled CO2 Concentration While Wearing Face Masks: A Pilot Study Using Capnography , 2022, medRxiv.
[16] M. Hashizume,et al. Early life exposure to indoor air pollutants and the risk of neurodevelopmental delays: The Japan Environment and Children's Study. , 2022, Environment international.
[17] C. Mak,et al. Spatiotemporal distribution of aerosols generated by using powder jet handpieces in periodontal department , 2021, Sustainable Cities and Society.
[18] C. Macintyre,et al. Wearing time and respiratory volume affect the filtration efficiency of masks against aerosols at different sizes , 2021, Environmental Technology & Innovation.
[19] D. Chakravortty,et al. Insights into spray impingement on mask surface: effect of mask properties on penetration and aerosolization of cough droplets , 2021, medRxiv.
[20] M. Saatchi,et al. Evaluation of headache associated with personal protective equipment during COVID‐19 , 2021, Brain and behavior.
[21] Chao Chai,et al. Release kinetics of microplastics from disposable face masks into the aqueous environment , 2021, Science of The Total Environment.
[22] D. Caputo,et al. Filtering efficiency model that includes the statistical randomness of non-woven fiber layers in facemasks , 2021, Separation and Purification Technology.
[23] M. Boraey. An analytical model for the effective filtration efficiency of single and multiple face masks considering leakage , 2021, Chaos, Solitons & Fractals.
[24] Qingyan Chen,et al. What is suitable social distancing for people wearing face masks during the COVID‐19 pandemic? , 2021, Indoor air.
[25] S. Griffith,et al. On the Flip Side of Mask Wearing: Increased Exposure to Volatile Organic Compounds and a Risk-Reducing Solution. , 2021, Environmental science & technology.
[26] D. Beezhold,et al. Face mask fit modifications that improve source control performance , 2021, American Journal of Infection Control.
[27] T. Zhang,et al. Ventilation of ordinary face masks , 2021, Building and Environment.
[28] H. Omidvarborna,et al. Efficacy of facemasks in mitigating respiratory exposure to submicron aerosols. , 2021, Journal of hazardous materials.
[29] Hao Jiang,et al. Face masks as a source of nanoplastics and microplastics in the environment: Quantification, characterization, and potential for bioaccumulation. , 2021, Environmental pollution.
[30] E. Bodenschatz,et al. An upper bound on one-to-one exposure to infectious human respiratory particles , 2021, Proceedings of the National Academy of Sciences.
[31] P. Koumoutsakos,et al. A computational study of expiratory particle transport and vortex dynamics during breathing with and without face masks , 2021, Physics of fluids.
[32] A. Saha,et al. On secondary atomization and blockage of surrogate cough droplets in single- and multilayer face masks , 2021, Science Advances.
[33] Ian R. Woodward,et al. Check the gap: Facemask performance and exhaled aerosol distributions around the wearer , 2020, PloS one.
[34] L. Marr,et al. Inward and outward effectiveness of cloth masks, a surgical mask, and a face shield , 2020, medRxiv.
[35] Y. Gonthier,et al. Electrostatic precipitator for fine and ultrafine particle removal from indoor air environments , 2020 .
[36] P. Hopke,et al. The impact on heart rate and blood pressure following exposure to ultrafine particles from cooking using an electric stove. , 2020, The Science of the total environment.
[37] Robinson Peri'c,et al. Analytical and Numerical Investigation of the Airflow in Face Masks used for Protection against COVID-19 Virus –Implications for Mask Design and Usage , 2020, Journal of Applied Fluid Mechanics.
[38] Supratik Guha,et al. Aerosol Filtration Efficiency of Common Fabrics Used in Respiratory Cloth Masks , 2020, ACS nano.
[39] W. W. Leung,et al. Electrostatic charged nanofiber filter for filtering airborne novel coronavirus (COVID-19) and nano-aerosols , 2020, Separation and Purification Technology.
[40] Bjarne W. Olesen,et al. Critical review of standards for indoor thermal environment and air quality , 2020 .
[41] J. Niu,et al. Tracer gas is a suitable surrogate of exhaled droplet nuclei for studying airborne transmission in the built environment , 2020, Building Simulation.
[42] Akif Arı. A comprehensive study on gas and particle emissions from laser printers: Chemical composition and health risk assessment , 2020 .
[43] Hossam Haick,et al. Measurement of temperature and relative humidity in exhaled breath , 2020 .
[44] A. Melikov,et al. Influence of Pulmonary Ventilation Rate and Breathing Cycle Period on the Risk of Cross Infection. , 2019, Indoor air.
[45] A. Melikov,et al. Airborne spread of expiratory droplet nuclei between the occupants of indoor environments: A review , 2018, Indoor air.
[46] Zhipeng Lei,et al. Computing Carbon Dioxide and Humidity in Filtering Facepiece Respirator Cavity During Breathing Cycles , 2014 .
[47] Chao-Hsin Lin,et al. Characterizing exhaled airflow from breathing and talking. , 2010, Indoor air.
[48] Chao-Hsin Lin,et al. Flow dynamics and characterization of a cough. , 2009, Indoor air.
[49] Z. Zhai,et al. Evaluation of Various Turbulence Models in Predicting Airflow and Turbulence in Enclosed Environments by CFD: Part 1—Summary of Prevalent Turbulence Models , 2007 .
[50] Li Yi,et al. Numerical simulation of virus diffusion in facemask during breathing cycles , 2005, International Journal of Heat and Mass Transfer.
[51] Yi Li,et al. NUMERICAL SIMULATION OF COUPLED HEAT AND MASS TRANSFER IN HYGROSCOPIC POROUS MATERIALS CONSIDERING THE INFLUENCE OF ATMOSPHERIC PRESSURE , 2004 .
[52] H. Lee,et al. Evaluation of rebreathed air in human nasal cavity with N95 respirator: a CFD study , 2016 .