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PMID: 40615552 Published · epublish English Journal Article

Assessing HVAC airflow modulation strategies to reduce short-term aerosol transmission in office environments.

Scientific reports ·Vol. 15 ·No. 1 ·2025-07-04 ·页码 23911

Saad MA, Hassan A, Hanafy A, Salem M, William M

Abstract

Airborne transmission of respiratory pathogens in indoor environments remains a significant global health challenge. While existing research broadly addresses ventilation effectiveness, there is a critical need to understand how specific diffuser placements influence early-phase aerosol dispersion immediately following a cough event. This study uses Computational Fluid Dynamics (CFD) with an Eulerian-Lagrangian approach and the Discrete Phase Model to analyze initial droplet transport, evaporation, and nuclei concentration under different air distribution configurations. The results demonstrate that conventional parallel exhaust configurations, though effective at reducing overall particle mass, can fail to control the lateral spread of infectious nuclei in the short term. In contrast, placing exhaust diffusers above the cough source reduces the lateral particle spread by approximately 40% compared to conventional layouts. Additionally, maintaining the WHO-recommended two-meter distance results in an 82-89% reduction in particle number concentration during the early dispersion phase. These findings underscore the importance of diffuser placement for controlling short-term particle dispersion immediately after a cough event in mechanically ventilated office environments. The study's scope is limited to early-phase dispersion dynamics within a 10-second simulation period, and further research is needed to assess long-term aerosol suspension, removal mechanisms, and infection risk. Nonetheless, the results offer practical insights for HVAC design and support the integration of ventilation strategies with physical distancing measures to reduce near-field exposure risks.

Keywords
Aerosol dispersion Airborne transmission CFD Discrete phase model Social distancing Ventilation optimization
MeSH 主题词
Humans Aerosols/analysis Ventilation/methods Cough Air Pollution, Indoor/prevention & control Hydrodynamics Workplace Air Conditioning/methods Computer Simulation COVID-19/transmission,prevention & control
化学物质
Aerosols
作者与单位
共 5 位作者,点击展开单位 / ORCID
Saad Mina A
Mechanical Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Alexandria, 60274446, Egypt. [email protected].
Hassan Amr
Marine Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Alexandria, 60274446, Egypt.
Hanafy Ahmed
Mechanical Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Alexandria, 60274446, Egypt.
Salem Mahmoud
Mechanical Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Alexandria, 60274446, Egypt.
William Micheal
Mechanical Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Smart Village, Giza, 60274446, Egypt.
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Corresponding email
Published
2025-07-04
电子出版
2025-00-04
页码
23911
Language
English
Country/Region
England
NLM ID
101563288
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