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The critical importance of mask seals on respirator performance: An analytical and simulation approach
- Source :
- PLoS ONE, Vol 16, Iss 2, p e0246720 (2021), PLoS ONE
- Publication Year :
- 2021
- Publisher :
- Public Library of Science (PLoS), 2021.
-
Abstract
- Filtering facepiece respirators (FFRs) and medical masks are widely used to reduce the inhalation exposure of airborne particulates and biohazardous aerosols. Their protective capacity largely depends on the fraction of these that are filtered from the incoming air volume. While the performance and physics of different filter materials have been the topic of intensive study, less well understood are the effects of mask sealing. To address this, we introduce an approach to calculate the influence of face-seal leakage on filtration ratio and fit factor based on an analytical model and a finite element method (FEM) model, both of which take into account time-dependent human respiration velocities. Using these, we calculate the filtration ratio and fit factor for a range of ventilation resistance values relevant to filter materials, 500–2500 Pa∙s∙m−1, where the filtration ratio and fit factor are calculated as a function of the mask gap dimensions, with good agreement between analytical and numerical models. The results show that the filtration ratio and fit factor are decrease markedly with even small increases in gap area. We also calculate particle filtration rates for N95 FFRs with various ventilation resistances and two commercial FFRs exemplars. Taken together, this work underscores the critical importance of forming a tight seal around the face as a factor in mask performance, where our straightforward analytical model can be readily applied to obtain estimates of mask performance.
- Subjects :
- business.product_category
Physiology
02 engineering and technology
Respirators
law.invention
0302 clinical medicine
law
Materials Testing
Medicine and Health Sciences
Range (statistics)
Respiratory Protective Devices
Respirator
Materials
Flow Rate
Air filter
Inhalation Exposure
Multidisciplinary
Respiration
Physics
Simulation and Modeling
Applied Mathematics
Masks
Porous Materials
Classical Mechanics
Equipment Design
Mechanics
021001 nanoscience & nanotechnology
030210 environmental & occupational health
Finite element method
Dynamics
Air Filters
Inhalation
Air Flow
Physical Sciences
Ventilation (architecture)
Engineering and Technology
Medicine
0210 nano-technology
Research Article
Biotechnology
N95 Respirators
Science
Finite Element Analysis
Materials Science
Material Properties
Airflow
Bioengineering
Fluid Mechanics
Research and Analysis Methods
Continuum Mechanics
Permeability
Aerodynamics
03 medical and health sciences
Humans
Particle Size
Filtration
Aerosols
Ventilators, Mechanical
Biology and Life Sciences
Fluid Dynamics
Filter (signal processing)
Models, Theoretical
Medical Devices and Equipment
Physiological Processes
business
Mathematics
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 16
- Database :
- OpenAIRE
- Journal :
- PLOS ONE
- Accession number :
- edsair.doi.dedup.....46eff83218d8c8a5451f02ab1e9f18df