1 |
Yang, S., Lee, G. W. M., Chen, C.-M., Wu, C.-C., & Yu, K.-P. (2007). The size and concentration of droplets generated by coughing in human subjects, Journal of Aerosol Medicine, 20(4), pp. 484-494.
DOI
|
2 |
Cobalt. (n.d.). Oracle, Retrieved Feb. 10th, 2022 from https://www.cobalt.re.kr/oracle-kor
|
3 |
Drager Inc. (n.d.). Drager Flow Check. Retrieved Feb. 10th, 2022 from https://www.draeger.com/en-us_us/Products/Flow-Check
|
4 |
FGI. (2018). Guidelines for Design and Construction of Hospitals, Retrieved Feb. 10th, 2022 from www.fgiguidelines.org/guidelines/2018-fgi-guidelines
|
5 |
HEAJ. (2013). Design and Management of Hospital Air-conditioning Guideline HEAS-02-2013, Retrieved Feb. 10th, 2022 from https://www.heaj.org/pdf/guideline_kuchou_index.pdf
|
6 |
Jung, M. J., & Hong, J. K. (2019). A numerical study on cough particle dispersion and deposition according to the location of exhaust air diffuser in airborne infection isolation room, Korea Journal of Air-Conditioning and Refrigeration Engineering, 31(12), 559-567.
DOI
|
7 |
KDCA (Korea Disease Control and Prevention Agency). (2019). Operation and Management Guideline for National Patient Isolation Units, Retrieved Feb. 10th, 2022 from https://www.kdca.go.kr/board/board.es?mid=a20507020000&bid=0019
|
8 |
USCDC. (2005). Guidelines for Preventing the Transmission of Mycobacterium Tuberculosis in Health-care Settings. MMWR. Retrieved Feb. 10th, 2022 from https://www.cdc.gov/mmwr/preview/mmwrhtml/rr5417a1.htm
|
9 |
Lee, B. U. (2020). Minimum sizes of respiratory particles carrying SARS-CoV-2 and the possibility of aerosol generation. International Journal of Environmental Research and Public Health, 17(19), 6960.
DOI
|
10 |
USCDC. (2003). Guidelines for Environmental Infection Control in Health-care Facilities. Retrieved Feb. 10th, 2022 from https://www.cdc.gov/infectioncontrol/pdf/guidelines/environmental-guidelines-P.pdf.
|
11 |
Kwon, S. J., Joo Y. C., & Kim, C. S. (2002). A study on the diffuser location for the reduction of airborne infection in operation room, Journal of the Korea Institute of Healthcare Architecture, 8(1), 7-12.
|
12 |
Agirman, A., Cetin, Y. E., Avci, M., & Aydin, O. (2020). Effect of air exhaust location on surgical site particle distribution in an operating room, Building Simulation, 13, 979-988.
DOI
|
13 |
Agirman, A., Cetin, Y. E., Avci, M., & Aydin, O. (2021). Effect of laminar airflow unit diffuser size on pathogen particle distribution in an operating room, Science and Technology for the Built Environment, 27(4), 402-413.
DOI
|
14 |
ASHRAE. (2013). Standard 170-2013; Ventilation of Health Care Facilities, Atlanta: American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc
|
15 |
Chow, T.T., & Yang, X.Y. (2005). Ventilation performance in the operating theatre against airorne infection: numerical study on an ultra-clean system, Journal of Hospital Infection, 59, 138-147.
DOI
|
16 |
He, G., Yang, X., & Srebric, J. (2005). Removal of contaminants released from room surfaces by displacement and mixing ventilation: modeling and validation, Indoor Air, 15(5), 367.
DOI
|
17 |
Siemens PLM. (n.d.). Simcenter STAR-CCM+. Retrieved Feb. 10th, 2022 from https://www.plm.automation.siemens.com/global/en/products/simcenter/STAR-CCM.html.
|
18 |
Xue, K., Cao, G., Liu, M., Zhang, Y., Pedersen, C., Mathisen, H. M., ... & Skogas, J. G. (2020). Experimental study on the effect of exhaust airflows on the surgical environment in an operating room with mixing ventilation, Journal of Building Engineering, 32, 101837.
DOI
|