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Published on: January 13, 2016
Study on the interzonal migration of airborne infectious particles in an isolation ward using benign bacteria
W T Leung1, G N Sze-To, C Y H Chao
1Department of Mechanical Engineering, The Hong Kong University of Science and Technology, Hong Kong, China.
Unlabelled:
Negative pressure isolation wards are essential infection control facilities against airborne transmissible diseases. Airborne infectious particles are supposed to be contained in the isolation room. However, negative pressure may break down by door-opening action or by human movement. Understanding the interzonal transport of airborne infectious particles in the isolation wards can aid the design and operation strategy of isolation facilities. In this work, the interzonal migration of airborne infectious particles by human movement was studied experimentally in an isolation ward. Artificial saliva solution with benign E. coli bacteria was aerosolized to simulate bacterium-laden infectious particles. The interzonal migration of aerosolized bacteria was characterized by biological air sampling. Less than 1% of airborne infectious particles were transported to the higher pressure zone when door was closed. With human movement, 2.7% of the particles were transported from the anteroom to the corridor. From high-to-low pressure zones, as much as 20.7% of airborne infectious particles were migrated. Only a minimal amount of particles was transported from the corridor to the positive pressure nurses' station. Infection risk of tuberculosis of the healthcare workers and other occupants in the isolation wards were also assessed based on the measured migration ratios.
Practical Implications:
Human movement is an important factor governing interzonal migration. It is the main cause of migration of airborne infectious particles to a relatively negative pressure zone. This study provides a set of experimentally obtained particle migration ratios by human movement. Other than serving as empirical data for further studies on the mechanics, these migration ratios can also be used to assess the infection risk for occupants in the isolation ward.
Insights
Human movement significantly impacts airborne particle spread in isolation wards, potentially increasing infection risk. Understanding this interzonal transport is crucial for designing effective infection control facilities.
Area of Science:
- Environmental Engineering
- Infection Control
- Aerosol Science
Background:
- Negative pressure isolation wards are critical for containing airborne diseases.
- Door opening and human movement can compromise containment by disrupting airflow and pressure differentials.
Purpose of the Study:
- To experimentally investigate the interzonal migration of airborne infectious particles caused by human movement within an isolation ward.
- To quantify particle transport between different pressure zones.
Main Methods:
- Aerosolization of artificial saliva with benign E. coli bacteria to simulate infectious particles.
- Biological air sampling to characterize bacterial migration between zones.
- Assessment of infection risk based on measured migration ratios.
Main Results:
- Less than 1% of particles migrated to higher pressure zones with doors closed.
- Human movement caused 2.7% particle transport from anteroom to corridor.
- Significant migration (20.7%) occurred from high-to-low pressure zones; minimal transport to nurses' station.
Conclusions:
- Human movement is a primary driver of airborne particle migration in isolation wards.
- Quantified migration ratios provide empirical data for mechanics studies and infection risk assessment.
- Findings aid in optimizing isolation facility design and operational strategies for enhanced safety.
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