Application of Portable Air Purifiers for Mitigating COVID-19 in Large Public Spaces
Abstract
:1. Introduction
2. Methodologies
3. Validation of the CFD Model
4. CFD Simulation and Analysis of Large Public Spaces
4.1. Restaurant Case
4.1.1. Case Description
4.1.2. Flow Field and Particle Trajectory Analysis
4.1.3. Fate Analysis of the Virus-Carrying Particles Exhaled from the Infected Occupant
4.2. Ballroom Case
4.2.1. Case Description
4.2.2. Flow Field and Particle Trajectory Analysis
4.2.3. Fate Analysis of the Virus-Carrying Exhaled from the Infected Occupant
5. Field Experiment and Analysis of Large Public Spaces
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Variable | Value |
---|---|
Table height | 0.76 m |
Table length | 2.13 m |
Table width | 0.91 m |
Distance between centers of manikin 1 and 4 | 1.3 m |
Distance between centers of manikin 1 and 2 | 1.1 m |
Floor to manikin mouth | 1.1 m |
Floor to manikin head | 1.3 m |
Air purifier height | 0.25 m |
Air purifier diameter | 0.15 m |
Ceiling height | 3.1 m |
Variable | Value |
---|---|
Open area of the talking mouth | 1.8 cm2 |
Airflow rate from the talking mouth | 500 cm3/s |
Average talking airflow speed | 2.77 m/s |
Temperature of the airflow from the talking mouth | 27 °C |
Aerodynamic diameter of the particles | 3 μm |
Density of the particles | 600 kg/m3 |
Number of particles released from the talking mouth | 5000 |
Object | Dimensions | Boundary Conditions |
---|---|---|
Diffuser inlet | 1.22 × 0.30 m2 | Tin = 17.6 °C |
Table | 0.87 × 0.87 × 0.75 m3 | Adiabatic |
Exhaust outlet | 0.61 × 0.61 m2 | Tex = 20 °C |
Diner body | 0.3 × 0.43 × 1.3 m3 | 27 °C |
light | 10.7 W/m2 | |
Air change rate | 5 times/h | |
Supply air velocity | 0.3429 m/s |
Floor-Standing Air Purifiers (FAP) | Table Air Purifier (TAP) | |
---|---|---|
Dimensions | 0.56 × 0.33 × 0.61 m3 | 0.2 × 0.2 × 0.42 m3 |
Inlet size | 0.13 m2 | 0.19 m2 |
Outlet size | 0.05 m2 | 0.03 m2 |
Clean air delivery rate | 554.4 m3/h | 197.7 m3/h |
CAF | CAFT | |
---|---|---|
Nreduction | 87.4% | 94.7% |
Object | Dimensions | Boundary Conditions |
---|---|---|
Inlet diffuser diameter | 0.8 m | Tin = 17.6 °C |
Table diameter | 1.82 m | Adiabatic |
Exhaust outlet | 1.58 × 1.1 m2 | Tex = 20 °C |
Diner body | 0.3 × 0.43 × 1.3 m3 | 27 °C |
Light | 10.7 W/m2 | |
Air change rate | 5 times/h | |
Supply air velocity | 0.4672 m/s |
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Zhai, Z.; Li, H.; Bahl, R.; Trace, K. Application of Portable Air Purifiers for Mitigating COVID-19 in Large Public Spaces. Buildings 2021, 11, 329. https://doi.org/10.3390/buildings11080329
Zhai Z, Li H, Bahl R, Trace K. Application of Portable Air Purifiers for Mitigating COVID-19 in Large Public Spaces. Buildings. 2021; 11(8):329. https://doi.org/10.3390/buildings11080329
Chicago/Turabian StyleZhai, Zhiqiang (John), He Li, Robert Bahl, and Keith Trace. 2021. "Application of Portable Air Purifiers for Mitigating COVID-19 in Large Public Spaces" Buildings 11, no. 8: 329. https://doi.org/10.3390/buildings11080329
APA StyleZhai, Z., Li, H., Bahl, R., & Trace, K. (2021). Application of Portable Air Purifiers for Mitigating COVID-19 in Large Public Spaces. Buildings, 11(8), 329. https://doi.org/10.3390/buildings11080329