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Research Article

Comparison of ventilation strategies in intensive care units for airborne infection control

ORCID Icon & ORCID Icon
Pages 5829-5851 | Received 07 Feb 2022, Accepted 07 Jun 2022, Published online: 30 Jun 2022

References

  • Agirman, A., Y. E. Cetin, M. Avci, and O. Aydin. 2020. Effect of air exhaust location on surgical site particle distribution in an operating room. Building Simulation 13:979–88. doi:10.1007/s12273-020-0642-1.
  • Alrebi, O. F., B. Obeidat, I. A. Abdallah, E. F. Darwish, and A. Amhamed. 2021. Airflow dynamics in an emergency department: A CFD simulation study to analyse COVID-19 dispersion. Alexandria Engineering Journal 61 (5):3435–45. doi:10.1016/j.aej.2021.08.062.
  • Anghel, L., C. G. Popovici, C. Stătescu, R. Sascău, M. Verdeș, V. Ciocan, I. L. Şerban, M. A. Maranduca, S. V. Hudişteanu, and F. E. Țurcanu. 2020. Impact of HVAC-systems on the dispersion of infectious aerosols in a cardiac intensive care unit. International Journal of Environmental Research and Public Health 17 (18):6582. doi:10.3390/ijerph17186582.
  • Anuraghava, C., K. Abhiram, V. N. S. Reddy, and H. Rajan. 2021. CFD modelling of airborne virus diffusion characteristics in a negative pressure room with mixed mode ventilation. International Journal for Simulation and Multidisciplinary Design Optimization 12:1. doi:10.1051/smdo/2021001.
  • ASHRAE. 2017. Standard 170-2021 - ventilation of health care facilities.
  • ASHRAE. 2020. ASHRAE position document on infectious aerosols. ASHRAE.
  • Bhattacharyya, S., K. Dey, A. R. Paul, and R. Biswas. 2020. A novel CFD analysis to minimize the spread of COVID-19 virus in hospital isolation room. Chaos, Solitons & Fractals 139:110294. doi:10.1016/j.chaos.2020.110294.
  • Chan, T. L., G. Dong, C. W. Leung, C. S. Cheung, and W. T. Hung. 2002. Validation of a two-dimensional pollutant dispersion model in an isolated street canyon. Atmospheric Environment 36 (5):861–72. doi:10.1016/S1352-2310(01)00490-3.
  • Chao, C. Y. H., M. P. Wan, L. Morawska, G. R. Johnson, Z. D. Ristovski, M. Hargreaves, K. Mengersen, S. Corbett, Y. Li, X. Xie, et al. 2009. Characterization of expiration air jets and droplet size distributions immediately at the mouth opening. Journal of Aerosol Science 40 (2):122–33. doi:10.1016/j.jaerosci.2008.10.003.
  • Chou, R., T. Dana, D. I. Buckley, S. Selph, R. Fu, and A. M. Totten. 2020. Epidemiology of and risk factors for coronavirus infection in health care workers. Annals of Internal Medicine 173 (2):120–36. doi:10.7326/m20-1632.
  • Crawford, C., E. Vanoli, B. Decorde, M. Lancelot, C. Duprat, C. Josserand, J. Jilesen, L. Bouadma, and J. F. Timsit. 2021. Modeling of aerosol transmission of airborne pathogens in ICU rooms of COVID-19 patients with acute respiratory failure. Scientific Reports 11 (1):1–12. doi:10.1038/s41598-021-91265-5.
  • Dai, H., and B. Zhao. 2020. Association of the infection probability of COVID-19 with ventilation rates in confined spaces. Building Simulation 13:1321–27. doi:10.1007/s12273-020-0703-5.
  • Dao, H. T., and K. S. Kim. 2022. Behavior of cough droplets emitted from Covid-19 patient in hospital isolation room with different ventilation configurations. Building and Environment 209:108649. doi:10.1016/j.buildenv.2021.108649.
  • Dietz, L., P. F. Horve, D. A. Coil, M. Fretz, J. A. Eisen, and K. Van Den Wymelenberg. 2020. 2019 novel coronavirus (COVID-19) pandemic: Built environment considerations to reduce transmission. mSystems 5 (2):e00245–20. doi:10.1128/mSystems.00245-20.
  • Geshwiler, M. 2005. ASHRAE pocket guide for air conditioning, heating, ventilation, refrigeration (IP Edition). Atlanta, United States: ASHRAE.
  • Gholami, M., I. Fawad, S. Shadan, R. Rowaiee, H. Ghanem, A. Omer, and H. S. B. Ho. 2021. COVID-19 and healthcare workers: A systematic review and metaanalysis. International Journal of Infectious Diseases 104:335–46. doi:10.1016/j.ijid.2021.01.013.
  • Gómez-Ochoa, S. A., O. H. Franco, L. Z. Rojas, P. F. Raguindin, Z. M. Roa-Díaz, B. M. Wyssmann, S. L. R. Romero Guevara, L. E. Echeverría, M. Glisic, and T. Muka. 2021. COVID-19 in health-care workers: A living systematic review and meta-analysis of prevalence, risk factors, clinical characteristics, and outcomes. American Journal of Epidemiology 190 (1):161–75. doi:10.1093/aje/kwaa191.
  • Guo, M., P. Xu, T. Xiao, R. He, M. Dai, and S. L. Miller. 2021. Review and comparison of HVAC operation guidelines in different countries during the COVID-19 pandemic. Building and Environment 187:107368. doi:10.1016/j.buildenv.2020.107368.
  • Han, Q., Q. Lin, S. Jin, and L. You. 2020. Coronavirus 2019-nCoV: A brief perspective from the front line. Journal of Infection 80 (4):373–77. doi:10.1016/j.jinf.2020.02.010.
  • ISO. 2007. Standard 15536-1 - Ergonomics – Computer manikins and body templates – Part 2: Verification of functions and validation of dimensions for computer manikin systems.
  • ISO. 2015. Standard 7730:2005 – Ergonomics of the thermal environment – Analytical determination and interpretation of thermal comfort using calculation of the PMV and PPD indices and local thermal comfort criteria.
  • Knupp, P. M. 2007. Remarks on mesh quality. 45th AIAA Aerospace Sciences Meeting and Exhibit, 7-10 January 2007 Reno, NV.
  • Li, X., Y. Yan, Y. Shang, and J. Tu. 2015. An Eulerian–Eulerian model for particulate matter transport in indoor spaces. Building and Environment 86:191–202. doi:10.1016/j.buildenv.2015.01.010.
  • Li, H., K. Zhong, and Z. J. Zhai. 2020. Investigating the influences of ventilation on the fate of particles generated by patient and medical staff in operating room. Building and Environment 180:107038. doi:10.1016/j.buildenv.2020.107038.
  • Liu, Z., L. Wang, R. Rong, S. Fu, G. Cao, and C. Hao. 2020. Full-scale experimental and numerical study of bioaerosol characteristics against cross-infection in a two-bed hospital ward. Building and Environment 186:107373. doi:10.1016/j.buildenv.2020.107373.
  • Morawska, L., G. R. Johnson, Z. D. Ristovski, M. Hargreaves, K. Mengersen, S. Corbett, C. Y. H. Chao, Y. Li, and D. Katoshevski. 2009. Size distribution and sites of origin of droplets expelled from the human respiratory tract during expiratory activities. Journal of Aerosol Science 40 (3):256–69. doi:10.1016/j.jaerosci.2008.11.002.
  • Morawska, L., J. W. Tang, W. Bahnfleth, P. M. Bluyssen, A. Boerstra, G. Buonanno, J. Cao, S. Dancer, A. Floto, F. Franchimon, et al. 2020. How can airborne transmission of COVID-19 indoors be minimised? Environment International 142:105832. doi:10.1016/j.envint.2020.105832.
  • Prajapati, S., N. Mehta, A. Chharia, and Y. Upadhyay 2021. Computational fluid dynamics-based disease transmission modeling of SARS-CoV-2 intensive care unit. Materials Today: Proceedings [In Press]. doi: 10.1016/j.matpr.2021.11.013.
  • Ren, J., Y. Wang, Q. Liu, and Y. Liu. 2021. Numerical study of three ventilation strategies in a prefabricated COVID-19 inpatient ward. Building and Environment 188:107467. doi:10.1016/j.buildenv.2020.107467.
  • Ritchie, H., E. Mathieu, L. Rodés-Guirao, C. Appel, C. Giattino, E. Ortiz-Ospina, J. Hasell, B. Macdonald, D. Beltekian, and M. Roser 2020. Coronavirus pandemic (COVID-19). Accessed January 23, 2022. https://ourworldindata.org/coronavirus
  • Samet, J. M., K. Prather, G. Benjamin, S. Lakdawala, J. M. Lowe, A. Reingold, J. Volckens, and L. C. Marr. 2021. Airborne transmission of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2): What we know. Clinical Infectious Diseases: An Official Publication of the Infectious Diseases Society of America. doi:10.1093/cid/ciab039.
  • Satheesan, M. K., K. W. Mui, and L. T. Wong. 2020. A numerical study of ventilation strategies for infection risk mitigation in general inpatient wards. Building Simulation 3 (4):887–96. doi:10.1007/s12273-020-0623-4.
  • Sukarno, R., N. Putra, I. I. Hakim, F. F. Rachman, and T. M. I. Mahlia. 2021. Utilizing heat pipe heat exchanger to reduce the energy consumption of airborne infection isolation hospital room HVAC system. Journal of Building Engineering 35:102116. doi:10.1016/j.jobe.2020.102116.
  • Sun, C., and Z. Zhai. 2020. The efficacy of social distance and ventilation effectiveness in preventing COVID-19 transmission. Sustainable Cities And Society 62:102390. doi:10.1016/j.scs.2020.102390.
  • Tang, J. W., W. P. Bahnfleth, P. M. Bluyssen, G. Buonanno, J. L. Jimenez, J. Kurnitski, Y. Li, S. Miller, C. Sekhar, L. Morawska, et al. 2021. Dismantling myths on the airborne transmission of severe acute respiratory syndrome coronavirus (SARS-CoV-2). Journal of Hospital Infection 110:89–96. doi:10.1016/j.jhin.2020.12.022.
  • Ullah, A. A., F. Nawaz, and D. Chattoraj. 2021. Locked up under lockdown: The COVID-19 pandemic and the migrant population. Social Sciences & Humanities Open 3 (1):100126. doi:10.1016/j.ssaho.2021.100126.
  • Wang, L., Y. Wang, D. Ye, and Q. Liu. 2020. Review of the 2019 novel coronavirus (SARS-CoV-2) based on current evidence. International Journal Of Antimicrobial Agents 55 (6):105948. doi:10.1016/j.ijantimicag.2020.105948.
  • Wang, J. X., X. Cao, and Y. P. Chen. 2021. An air distribution optimization of hospital wards for minimizing cross-infection. Journal of Cleaner Production 279:123431. doi:10.1016/j.jclepro.2020.123431.
  • Wedel, J., P. Steinmann, M. Štrakl, M. Hriberšek, and J. Ravnik. 2021. Risk assessment of infection by airborne droplets and aerosols at different levels of cardiovascular activity. Archives of Computational Methods in Engineering 28 (6):4297–316. doi:10.1007/s11831-021-09613-7.
  • World Health Organization. 2020. Modes of transmission of virus causing COVID-19: implications for IPC precaution recommendations: scientific brief. World Health Organization. 29 March 2020. WHO/2019-nCoV/Sci_Brief/Transmission_modes/2020.2.
  • World Health Organization (WHO) 2022. WHO COVID-19 Dashboard. Accessed January 23, 2022. https://covid19.who.int/
  • Yilmazoglu, Z., and A. Demircan. 2021. Precautions to be taken and experiences in mechanical systems in existing hospitals under Covid-19. Journal of Polytechnic Early Access), 1–1. doi:10.2339/politeknik.860401.
  • Zhang, Z., and Q. Chen. 2007. Comparison of the Eulerian and Lagrangian methods for predicting particle transport in enclosed spaces. Atmospheric Environment 41 (25):5236–48. doi:10.1016/j.atmosenv.2006.05.086.
  • Zhao, B., C. Yang, X. Yan, and S. Liu. 2008. Particle dispersion and deposition in ventilated rooms: Testing and evaluation of different Eulerian and Lagrangian models. Building and Environment 43 (4):388–97. doi:10.1016/j.buildenv.2007.01.005.
  • Zheng, L., X. Wang, C. Zhou, Q. Liu, S. Li, Q. Sun, M. Wang, Q. Zhou, and W. Wang. 2020. Analysis of the infection status of healthcare workers in Wuhan during the COVID-19 outbreak: A cross-sectional study. Clinical Infectious Diseases 71 (16):2109–13. doi:10.1093/cid/ciaa588.
  • Zhou, Y., and S. Ji. 2021. Experimental and numerical study on the transport of droplet aerosols generated by occupants in a fever clinic. Building and Environment 187:107402. doi:10.1016/j.buildenv.2020.107402.

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