[1] Ding, J., Yu, C. W., & Cao, S.-J. (2020). HVAC systems for environmental control to minimize the COVID-19 infection. Indoor and Built Environment, 29(9), 1195–1201.
[2] Aganovic, A., & Cao, G. (2019). Evaluation of airborne contaminant exposure in a single-bed isolation ward equipped with a protected occupied zone ventilation system. Indoor and Built Environment, 28(8), 1092–1103.
[3] Borro, L., et al. (2021). The role of air conditioning in the diffusion of SARS-CoV-2 in indoor environments: A first computational fluid dynamic model, based on investigations performed at the Vatican State Children's Hospital. Environmental Research, 193, 110343.
[4] Rolloos, M. (1993). HVAC systems and indoor air quality. Indoor and Built Environment, 2(4), 204–212.
[5] Zhang, Y., et al. (2020). Comparative research on the air pollutant prevention and thermal comfort for different types of ventilation. Indoor and Built Environment, 1420326X20925521.
[6] Hwang, R.-L., et al. (2007). Patient thermal comfort requirement for hospital environments in Taiwan. Building and Environment, 42(8), 2980–2987.
[7] Memarzadeh, F., & Manning, A. (2000). Thermal comfort, uniformity, and ventilation effectiveness in patient rooms: Performance assessment using ventilation indices. Transactions of the American Society of Heating, Refrigerating and Air-Conditioning Engineers, 106(2), 748–761.
[8] Verheyen, J., et al. (2011). Thermal comfort of patients: Objective and subjective measurements in patient rooms of a Belgian healthcare facility. Building and Environment, 46(5), 1195–1204.
[9] Van Gaever, R., et al. (2014). Thermal comfort of the surgical staff in the operating room. Building and Environment, 81, 37–41.
[10] Loomans, M., et al. (2016). Alternative ventilation system for operating theaters: Parameter study and full-scale assessment of the performance of a local ventilation system. Building and Environment, 102, 26–38.
[11] Chow, T.-T., & Wang, J. (2012). Dynamic simulation on impact of surgeon bending movement on bacteria-carrying particles distribution in operating theatre. Building and Environment, 57, 68–80.
[12] Sadrizadeh, S., et al. (2016). Numerical simulation of the impact of surgeon posture on airborne particle distribution in a turbulent mixing operating theatre. Building and Environment, 110, 140–147.
[13] Romano, F., et al. (2015). Numerical and experimental analysis of airborne particles control in an operating theater. Building and Environment, 89, 369–379.
[14] Gholami Motlagh, V., & Ahmadzadehtalatapeh, M. (2022). Optimization of air distribution patterns by arrangements of air inlets and outlets: Case study of an operating room. Journal of Applied and Computational Mechanics, 8(3), 809–830.
[15] Gholami Motlagh, V., Ahmadzadehtalatapeh, M., & Mohammadi, O. (2022). Effect of turbulent and laminar flow mechanisms on airflow patterns and CO₂ distribution in an operating room: A numerical analysis. Scientia Iranica, 30(3), 1008–1026.
[16] Liu, Z., et al. (2020). Effect of a circulating nurse walking on airflow and bacteria-carrying particles in the operating room: An experimental and numerical study. Building and Environment, 186, 107315.
[17] Zhang, Y., et al. (2020). The impact of air change rate on the air quality of surgical microenvironment in an operating room with mixing ventilation. Journal of Building Engineering, 32, 101770.
[18] Ho, S. H., Rosario, L., & Rahman, M. M. (2009). Three-dimensional analysis for hospital operating room thermal comfort and contaminant removal. Applied Thermal Engineering, 29(10), 2080–2092.
[19] Berlanga, F., et al. (2018). Experimental assessment of different mixing air ventilation systems on ventilation performance and exposure to exhaled contaminants in hospital rooms. Energy and Buildings, 177, 207–219.
[20] Bhattacharyya, S., et al. (2020). A novel CFD analysis to minimize the spread of COVID-19 virus in hospital isolation room. Chaos, Solitons & Fractals, 139, 110294.
[21] Ren, J., et al. (2021). Numerical study of three ventilation strategies in a prefabricated COVID-19 inpatient ward. Building and Environment, 188, 107467.
[22] Shao, S., et al. (2021). Risk assessment of airborne transmission of COVID-19 by asymptomatic individuals under different practical settings. Journal of Aerosol Science, 151, 105661.
[23] Dbouk, T., & Drikakis, D. (2020). On coughing and airborne droplet transmission to humans. Physics of Fluids, 32(5), 053310.
[24] Li, Y., et al. (2021). Probable airborne transmission of SARS-CoV-2 in a poorly ventilated restaurant. Building and Environment, 107788.
[25] Vuorinen, V., et al. (2020). Modelling aerosol transport and virus exposure with numerical simulations in relation to SARS-CoV-2 transmission by inhalation indoors. Safety Science, 130, 104866.
[26] Peng, S., Chen, Q., & Liu, E. (2020). The role of computational fluid dynamics tools on investigation of pathogen transmission: Prevention and control. Science of the Total Environment, 142090.
[27] Sadrizadeh, S., et al. (2014). Influence of staff number and internal constellation on surgical site infection in an operating room. Particuology, 13, 42–51.
[28] Wang, C., Holmberg, S., & Sadrizadeh, S. (2018). Numerical study of temperature-controlled airflow in comparison with turbulent mixing and laminar airflow for operating room ventilation. Building and Environment, 144, 45–56.
[29] Shih, T.-H., et al. (1995). A new k-ε eddy viscosity model for high Reynolds number turbulent flows. Computers & Fluids, 24(3), 227–238.
[30] Srebric, J., et al. (2008). CFD boundary conditions for contaminant dispersion, heat transfer and airflow simulations around human occupants in indoor environments. Building and Environment, 43(3), 294–303.
[31] Chen, Q. (1995). Comparison of different k-ε models for indoor air flow computations. Numerical Heat Transfer, Part B: Fundamentals, 28(3), 353–369.
[32] Zhai, Z. J., et al. (2007). Evaluation of various turbulence models in predicting airflow and turbulence in enclosed environments by CFD: Part 1—Summary of prevalent turbulence models. HVAC&R Research, 13(6), 853–870.
[33] Van Maele, K., & Merci, B. (2006). Application of two buoyancy-modified k–ε turbulence models to different types of buoyant plumes. Fire Safety Journal, 41(2), 122–138.
[34] Kuznik, F., Rusaouën, G., & Brau, J. (2007). Experimental and numerical study of a full scale ventilated enclosure: Comparison of four two equations closure turbulence models. Building and Environment, 42(3), 1043–1053.
[35] Al Assaad, D., et al. (2018). Effectiveness of intermittent personalized ventilation in protecting occupant from indoor particles. Building and Environment, 128, 22–32.
[36] Zheng, C., et al. (2018). Comparison of air-conditioning systems with bottom-supply and side-supply modes in a typical office room. Applied Energy, 227, 304–311.
[37] Liu, C., Zhou, G., & Li, H. (2015). Analysis of thermal environment in a hospital operating room. Procedia Engineering, 121, 735–742.
[38] Oh, W., & Kato, S. (2018). The effect of airspeed and wind direction on human's thermal conditions and air distribution around the body. Building and Environment, 141, 103–116.
[39] Ning, M., et al. (2016). Computational fluid dynamics (CFD) modelling of air flow field, mean age of air and CO₂ distributions inside a bedroom with different heights of conditioned air supply outlet. Applied Energy, 164, 906–915.
[40] Dehghan, M. H., & Abdolzadeh, M. (2018). Comparison study on air flow and particle dispersion in a typical room with floor, skirt boarding, and radiator heating systems. Building and Environment, 133, 161–177.
[41] Abou Hweij, W., et al. (2016). Optimized performance of displacement ventilation aided with chair fans for comfort and indoor air quality. Energy and Buildings, 127, 907–919.
[42] Cao, S.-J., et al. (2017). Study on the impacts of human walking on indoor particles dispersion using momentum theory method. Building and Environment, 126, 195–206.
[43] Ganesh, G. A., Sinha, S. L., & Verma, T. N. (2020). Numerical simulation for optimization of the indoor environment of an occupied office building using double-panel and ventilation radiator. Journal of Building Engineering, 29, 101139.
[44] Zhang, W., et al. (2020). Numerical study on the gas leakage and dispersion at the street intersection of a building group. Computer Modeling in Engineering & Sciences, 123(3), 1247–1266.
[45] Rahimi, A., Tavakoli, T., & Zahiri, S. (2014). Computational fluid dynamics (CFD) modeling of gaseous pollutants dispersion in low wind speed condition: Isfahan refinery, a case study. Petroleum Science and Technology, 32(11), 1318–1326.
[46] ASHRAE. (2008). ANSI/ASHRAE Standard 170-2008: Ventilation of health care facilities. American Society of Heating, Refrigerating and Air-Conditioning Engineers.
[47] ASHRAE. (2013). ANSI/ASHRAE Standard 170-2013: Ventilation of health care facilities. American Society of Heating, Refrigerating and Air-Conditioning Engineers.
[48] Uğursal, A., & Culp, C. H. (2013). The effect of temperature, metabolic rate and dynamic localized airflow on thermal comfort. Applied Energy, 111, 64–73.
[49] ASHRAE. (2017). ASHRAE Standard 55-2017: Thermal environmental conditions for human occupancy. American Society of Heating, Refrigerating and Air-Conditioning Engineers.
[50] Fanger, P. O. (1970). Thermal comfort: Analysis and applications in environmental engineering. Danish Technical Press.
[51] Yao, Y., et al. (2007). Experimental study on skin temperature and thermal comfort of the human body in a recumbent posture under uniform thermal environments. Indoor and Built Environment, 16(6), 505–518.
[52] International Organization for Standardization. (2005). ISO 7730: 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. ISO.
[53] Liu, W., Lian, Z., & Yao, Y. (2008). Optimization on indoor air diffusion of floor-standing type room air-conditioners. Energy and Buildings, 40(2), 59–70.